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2020 | OriginalPaper | Buchkapitel

3. Preparation Methods of Perovskite-Type Oxide Materials

verfasst von : Weiren Xia, Yao Lu, Xinhua Zhu

Erschienen in: Revolution of Perovskite

Verlag: Springer Singapore

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Abstract

Perovskite oxide materials, an important inorganic crystal class with the general formula of ABO3 exhibit a broad spectrum of functional properties such as dielectric, ferroelectric, piezoelectric, and magnetic properties, which have promising applications in modern microelectronics. Due to their structural simplicity and flexibility, many desirable properties can be tailored by appropriate chemical substitutions at the A- and/or B-sites of perovskite structure. Therefore, the perovskite-type oxides are probably the most studied family of oxides in the past century. Many preparation methods using solid, liquid, or gas phase precursors have been developed to synthesize perovskite oxide materials. This chapter gives a comprehensive summary of the preparation methods of perovskite-type oxide materials with a wide range scope from bulk perovskite oxide ceramics to perovskite oxide nanopowders, and to perovskite 1D, 2D, and 3D oxide nanostructures.

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Literatur
1.
Zurück zum Zitat Bhalla AS, Guo R, Roy R (2000) The perovskite structure-a review of its role in ceramic science and technology. Mater. Res. Innova. 4(1):3–26 Bhalla AS, Guo R, Roy R (2000) The perovskite structure-a review of its role in ceramic science and technology. Mater. Res. Innova. 4(1):3–26
2.
Zurück zum Zitat Nourafkan R, Marsiglio F, Kotliar G (2012) Model of the electron-phonon interaction and optical conductivity of Ba1−xKxBiO3 superconductors. Phys Rev Lett 109(1):017001(1–5) Nourafkan R, Marsiglio F, Kotliar G (2012) Model of the electron-phonon interaction and optical conductivity of Ba1−xKxBiO3 superconductors. Phys Rev Lett 109(1):017001(1–5)
3.
Zurück zum Zitat Markovich V, Fita I, Wisniewski A, Jung G, Mogilyansky D, Puzniak R, Titelman L, Gorodetsky G (2010) Spin glass-like properties of La0.8Ca0.2MnO3 nanoparticles ensembles. Phys Rev B 81(13):134440(1–11) Markovich V, Fita I, Wisniewski A, Jung G, Mogilyansky D, Puzniak R, Titelman L, Gorodetsky G (2010) Spin glass-like properties of La0.8Ca0.2MnO3 nanoparticles ensembles. Phys Rev B 81(13):134440(1–11)
4.
Zurück zum Zitat Sarkar T, Raychaudhuri AK, Bera AK, Yusuf SM (2010) Effect of size reduction on the ferromagnetism of the manganite La1−xCaxMnO3 (x = 0.33). New J Phys 12(12):123026 (1–21) Sarkar T, Raychaudhuri AK, Bera AK, Yusuf SM (2010) Effect of size reduction on the ferromagnetism of the manganite La1−xCaxMnO3 (x = 0.33). New J Phys 12(12):123026 (1–21)
5.
Zurück zum Zitat Grutter A, Wong F, Arenholz E, Liberati M, Vailionis A, Suzuki Y (2010) Enhanced magnetism in epitaxial SrRuO3 thin films. Appl Phys Lett 96(8):082509(1–3). Grutter A, Wong F, Arenholz E, Liberati M, Vailionis A, Suzuki Y (2010) Enhanced magnetism in epitaxial SrRuO3 thin films. Appl Phys Lett 96(8):082509(1–3).
6.
Zurück zum Zitat Pena MA, Fierro JLG (2001) Chemical structures and performance of perovskite oxides. Chem Rev 101(7):1981–2018 Pena MA, Fierro JLG (2001) Chemical structures and performance of perovskite oxides. Chem Rev 101(7):1981–2018
7.
Zurück zum Zitat Dawber M, Rabe KM, Scott JF (2005) Physics of thin-film ferroelectric oxides. Rev Mod Phys 77(4):1083–1103 Dawber M, Rabe KM, Scott JF (2005) Physics of thin-film ferroelectric oxides. Rev Mod Phys 77(4):1083–1103
8.
Zurück zum Zitat Fiebig M, Lottermoser T, Fröhlich D, Goltsev AV, Pisarev RV (2002) Observation of coupled magnetic and electric domains. Nature 419(6909):818–820 Fiebig M, Lottermoser T, Fröhlich D, Goltsev AV, Pisarev RV (2002) Observation of coupled magnetic and electric domains. Nature 419(6909):818–820
9.
Zurück zum Zitat Gruverman A, Kholkin A (2006) Nanoscale ferroelectrics: processing, characterization and future trends. Rep Prog Phys 69(8):2443–2474 Gruverman A, Kholkin A (2006) Nanoscale ferroelectrics: processing, characterization and future trends. Rep Prog Phys 69(8):2443–2474
10.
Zurück zum Zitat Haertling GH (1999) Ferroelectric ceramics: history and technology. J Am Ceram Soc 82(4):797–818 Haertling GH (1999) Ferroelectric ceramics: history and technology. J Am Ceram Soc 82(4):797–818
11.
Zurück zum Zitat Brinker CJ, Hurd AJ, Schunk PR, Frye GC, Ashley CS (1992) Review of sol–gel thin film formation. J Non-crystalline Solids 147–148:424–436 Brinker CJ, Hurd AJ, Schunk PR, Frye GC, Ashley CS (1992) Review of sol–gel thin film formation. J Non-crystalline Solids 147–148:424–436
12.
Zurück zum Zitat Dimitriev Y, Ivanova Y, Iordanova R (2008) History of sol–gel science and technology. J Univ Chem Technol Metallurgy 43(2):181–192 Dimitriev Y, Ivanova Y, Iordanova R (2008) History of sol–gel science and technology. J Univ Chem Technol Metallurgy 43(2):181–192
13.
Zurück zum Zitat Yoshimura M, Byrappa K (2008) Hydrothermal processing of materials: past, present and future. J Mater Sci 43(7):2085–2103 Yoshimura M, Byrappa K (2008) Hydrothermal processing of materials: past, present and future. J Mater Sci 43(7):2085–2103
14.
Zurück zum Zitat Zhu XH, Hang QM (2013) Microscopical and physical characterization of microwave and microwave-hydrothermal synthesis products. Micron 44:21–44 Zhu XH, Hang QM (2013) Microscopical and physical characterization of microwave and microwave-hydrothermal synthesis products. Micron 44:21–44
15.
Zurück zum Zitat Ganguli A, Ganguly A, Vaidya S (2010) Microemulsion-based synthesis of nanocrystalline materials. Chem Soc Rev 39(2):474–85 Ganguli A, Ganguly A, Vaidya S (2010) Microemulsion-based synthesis of nanocrystalline materials. Chem Soc Rev 39(2):474–85
16.
Zurück zum Zitat Nguyen TVA, Hattori AN, Fujiwara Y, Ueda S, Tanaka H (2013) Colossal magnetoresistive (La,Pr,Ca)MnO3 nanobox array structures constructed by the three-dimensional nanotemplate pulsed laser deposition technique. Appl Phys Lett 103(22):223105(1–4) Nguyen TVA, Hattori AN, Fujiwara Y, Ueda S, Tanaka H (2013) Colossal magnetoresistive (La,Pr,Ca)MnO3 nanobox array structures constructed by the three-dimensional nanotemplate pulsed laser deposition technique. Appl Phys Lett 103(22):223105(1–4)
17.
Zurück zum Zitat Zhu XH (2010) Piezoelectric ceramics: processing, properties, characterization, and applications. In: Nelson WG (ed) Piezoelectric materials: structure, properties and applications. Nova Science Publishers, New York, pp 1–36 Zhu XH (2010) Piezoelectric ceramics: processing, properties, characterization, and applications. In: Nelson WG (ed) Piezoelectric materials: structure, properties and applications. Nova Science Publishers, New York, pp 1–36
18.
Zurück zum Zitat Silva J, Reyes A, Esparza H, Camacho H, Fuentes L (2011) BiFeO3: A review on synthesis, doping and crystal structure. Integr. Ferroelectrics 126:47–59 Silva J, Reyes A, Esparza H, Camacho H, Fuentes L (2011) BiFeO3: A review on synthesis, doping and crystal structure. Integr. Ferroelectrics 126:47–59
19.
Zurück zum Zitat Chaiyo N, Ruangphanit A, Muanghlua R, Niemcharoen S, Boonchom B, Vittayakorn N (2011) Synthesis of potassium niobate (KNbO3) nanopowder by a modified solid-state reaction. J Mater Sci 46:1585–1590 Chaiyo N, Ruangphanit A, Muanghlua R, Niemcharoen S, Boonchom B, Vittayakorn N (2011) Synthesis of potassium niobate (KNbO3) nanopowder by a modified solid-state reaction. J Mater Sci 46:1585–1590
20.
Zurück zum Zitat Bernardo MS, Jardiel T, Peiteado M, Caballero AC, Villegas M (2011) Reaction pathways in the solid state synthesis of multiferroic BiFeO3. J Eur Ceram Soc 31:3047–3053 Bernardo MS, Jardiel T, Peiteado M, Caballero AC, Villegas M (2011) Reaction pathways in the solid state synthesis of multiferroic BiFeO3. J Eur Ceram Soc 31:3047–3053
21.
Zurück zum Zitat Beauger A, Mutin JC, Niepce JC (1983) Synthesis reaction of metatitanate BaTiO3. J Mater Sci 18(10):3041–3046 Beauger A, Mutin JC, Niepce JC (1983) Synthesis reaction of metatitanate BaTiO3. J Mater Sci 18(10):3041–3046
22.
Zurück zum Zitat Rössel M, Höche H-R, Leipner HS, Völtzke D, Abicht H-P, Hollricher O, Müller J, Gablenz S (2004) Raman microscopic investigations of BaTiO3 precursors with core-shell structure. Anal Bioanal Chem 380:157–162 Rössel M, Höche H-R, Leipner HS, Völtzke D, Abicht H-P, Hollricher O, Müller J, Gablenz S (2004) Raman microscopic investigations of BaTiO3 precursors with core-shell structure. Anal Bioanal Chem 380:157–162
23.
Zurück zum Zitat Ubaldini A, Buscaglia V, Uliana C, Costa G, Ferretti M (2003) Kinetics and mechanism of formation of barium zirconate from barium carbonate and zirconia powders. J Am Ceram Soc 86(1):19–25 Ubaldini A, Buscaglia V, Uliana C, Costa G, Ferretti M (2003) Kinetics and mechanism of formation of barium zirconate from barium carbonate and zirconia powders. J Am Ceram Soc 86(1):19–25
24.
Zurück zum Zitat Kimura T (2011) Molten salt synthesis of ceramic powders. In: Sikalidis C (ed) Advances in ceramics-synthesis and characterization, processing and specific applications, 1st edn. INTECH Open Access Publisher; Rijeka, Croatia, pp 75–100 Kimura T (2011) Molten salt synthesis of ceramic powders. In: Sikalidis C (ed) Advances in ceramics-synthesis and characterization, processing and specific applications, 1st edn. INTECH Open Access Publisher; Rijeka, Croatia, pp 75–100
25.
Zurück zum Zitat Chen J, Yu RB, Li LH, Sun C, Zhang T, Chen HW, Xing XR (2008) Structure and shape evolution of Bi1−xLaxFeO3 perovskite microcrystals by molten salt synthesis. Eur J Inorg Chem 23:3655–3660 Chen J, Yu RB, Li LH, Sun C, Zhang T, Chen HW, Xing XR (2008) Structure and shape evolution of Bi1−xLaxFeO3 perovskite microcrystals by molten salt synthesis. Eur J Inorg Chem 23:3655–3660
26.
Zurück zum Zitat Zheng XH, Chen PJ, Ma N, Ma ZH, Tang DP (2012) Synthesis and dielectric properties of BiFeO3 derived from molten salt method. J Mater Sci Mater Electron 23:990–994 Zheng XH, Chen PJ, Ma N, Ma ZH, Tang DP (2012) Synthesis and dielectric properties of BiFeO3 derived from molten salt method. J Mater Sci Mater Electron 23:990–994
27.
Zurück zum Zitat Zhu X, Zhou J, Jiang M, Xie J, Liang S, Li S, Liu Z, Zhu Y, Zhu J, Liu Z (2014) Molten salt synthesis of bismuth ferrite nano- and microcrystals and their structural characterization. J Am Ceram Soc 97(7):2223–2232 Zhu X, Zhou J, Jiang M, Xie J, Liang S, Li S, Liu Z, Zhu Y, Zhu J, Liu Z (2014) Molten salt synthesis of bismuth ferrite nano- and microcrystals and their structural characterization. J Am Ceram Soc 97(7):2223–2232
28.
Zurück zum Zitat Liu Z, Liang S, Li S, Zhu Y, Zhu X (2015) Synthesis, microstructural characterization, and dielectric properties of BiFeO3 microcrystals derived from molten salt method. Ceram Int 41(Sup 1):S19–25 Liu Z, Liang S, Li S, Zhu Y, Zhu X (2015) Synthesis, microstructural characterization, and dielectric properties of BiFeO3 microcrystals derived from molten salt method. Ceram Int 41(Sup 1):S19–25
29.
Zurück zum Zitat Chen J, Xing XR, Watson A, Wang W, Yu RB, Deng JX, Lai Y, Sun C, Chen XB (2007) Rapid synthesis of multiferroic BiFeO3 single crystalline nanostructures. Chem Mater 19:3598–3600 Chen J, Xing XR, Watson A, Wang W, Yu RB, Deng JX, Lai Y, Sun C, Chen XB (2007) Rapid synthesis of multiferroic BiFeO3 single crystalline nanostructures. Chem Mater 19:3598–3600
30.
Zurück zum Zitat He X, Gao L (2009) Synthesis of pure phase BiFeO3 powders in molten alkali metal nitrates. Ceram Int 35:975–978 He X, Gao L (2009) Synthesis of pure phase BiFeO3 powders in molten alkali metal nitrates. Ceram Int 35:975–978
31.
Zurück zum Zitat Yoon KH, Cho YS, Kang DH (1998) Molten salt synthesis of lead-based relaxors. J Mater Sci 33(12):2977–2984 Yoon KH, Cho YS, Kang DH (1998) Molten salt synthesis of lead-based relaxors. J Mater Sci 33(12):2977–2984
32.
Zurück zum Zitat Thirumal M, Jain P, Ganguli AK (2001) Molten salt synthesis of complex perovskite-related dielectric oxides. Mater Chem Phys 70(1):7–11 Thirumal M, Jain P, Ganguli AK (2001) Molten salt synthesis of complex perovskite-related dielectric oxides. Mater Chem Phys 70(1):7–11
33.
Zurück zum Zitat Kačenka M, Kaman O, Jirák Z, Maryško M, Žvátora P, Vratislav S, Lukeš I (2014) Magnetic properties of La1−xSrxMnO3 nanoparticles prepared in a molten salt. J Appl Phys 115(17):17B525(1–3) Kačenka M, Kaman O, Jirák Z, Maryško M, Žvátora P, Vratislav S, Lukeš I (2014) Magnetic properties of La1−xSrxMnO3 nanoparticles prepared in a molten salt. J Appl Phys 115(17):17B525(1–3)
34.
Zurück zum Zitat Xia WR, Li L, Wu H, Xue PJ, Zhu XH (2017) Molten salt route of La1−xCaxMnO3 nanoparticles: microstructural characterization, magnetic and electrical transport properties. Mater Charact 131:128–134 Xia WR, Li L, Wu H, Xue PJ, Zhu XH (2017) Molten salt route of La1−xCaxMnO3 nanoparticles: microstructural characterization, magnetic and electrical transport properties. Mater Charact 131:128–134
35.
Zurück zum Zitat McCormick PG, Tsuzuki T, Robinson JS, Ding J (2001) Nanopowders synthesized by mechanochemical processing. Adv Mater 13(12–13):1008–1010 McCormick PG, Tsuzuki T, Robinson JS, Ding J (2001) Nanopowders synthesized by mechanochemical processing. Adv Mater 13(12–13):1008–1010
36.
Zurück zum Zitat Kong LB, Zhang TS, Ma J, Boey F (2008) Progress in synthesis of ferroelectric ceramic materials via high-energy mechanochemical technique. Prog Mater Sci 53(2):207–322 Kong LB, Zhang TS, Ma J, Boey F (2008) Progress in synthesis of ferroelectric ceramic materials via high-energy mechanochemical technique. Prog Mater Sci 53(2):207–322
37.
Zurück zum Zitat Zouari S, Ellouze M, Nasri A, Cherif W, Hlil EK, Elhalouani F (2014) Morphology, structural, magnetic, and magnetocaloric properties of Pr0.7Ca0.3MnO3 nanopowder prepared by mechanical ball milling method. J Supercond Novel Magnetism 27(2):555–563 Zouari S, Ellouze M, Nasri A, Cherif W, Hlil EK, Elhalouani F (2014) Morphology, structural, magnetic, and magnetocaloric properties of Pr0.7Ca0.3MnO3 nanopowder prepared by mechanical ball milling method. J Supercond Novel Magnetism 27(2):555–563
38.
Zurück zum Zitat Khamman O, Wongmaneerung R, Chaisan W, Yimnirun R, Ananta S (2008) Preparation of perovskite nanopowders by vibro-milling technique. J Alloy Compd 456(1–2):492–497 Khamman O, Wongmaneerung R, Chaisan W, Yimnirun R, Ananta S (2008) Preparation of perovskite nanopowders by vibro-milling technique. J Alloy Compd 456(1–2):492–497
39.
Zurück zum Zitat Lee G-J, Park EK, Yang SA, Park JJ, Bu SD, Lee MK Rapid and direct synthesis of complex perovskite oxides through a highly energetic planetary milling. Sci Rep 7:46241(1–11) Lee G-J, Park EK, Yang SA, Park JJ, Bu SD, Lee MK Rapid and direct synthesis of complex perovskite oxides through a highly energetic planetary milling. Sci Rep 7:46241(1–11)
40.
Zurück zum Zitat Welham NJ (1998) Mechanically induced reaction between alkaline earth metal oxides and TiO2. J Mater Res 13(6):1607–1613 Welham NJ (1998) Mechanically induced reaction between alkaline earth metal oxides and TiO2. J Mater Res 13(6):1607–1613
41.
Zurück zum Zitat Szafraniak I, Połomska M, Hilczer B, Pietraszko A, Kepinski L. Characterization of BiFeO3 nanopowder obtained by mechanochemical synthesis. J Eur Ceram Soc 27:4399–4402 Szafraniak I, Połomska M, Hilczer B, Pietraszko A, Kepinski L. Characterization of BiFeO3 nanopowder obtained by mechanochemical synthesis. J Eur Ceram Soc 27:4399–4402
42.
Zurück zum Zitat Chandler CD, Roger C, Hampdensmith MJ (1993) Chemical aspects of solution routes to perovskite-phase mixed-metal oxides from metal-organic precursors. Chem Rev 93:1205–1241 Chandler CD, Roger C, Hampdensmith MJ (1993) Chemical aspects of solution routes to perovskite-phase mixed-metal oxides from metal-organic precursors. Chem Rev 93:1205–1241
43.
Zurück zum Zitat Hench LL, West JK (1990) The sol–gel process. Chem Rev 90(1):33–72 Hench LL, West JK (1990) The sol–gel process. Chem Rev 90(1):33–72
44.
Zurück zum Zitat Brutchey RL, Morse DE (2006) Template-free, low-temperature synthesis of crystalline barium titanate nanoparticles under bio-inspired conditions. Angew Chem Int Ed 45(39):6564–6566 Brutchey RL, Morse DE (2006) Template-free, low-temperature synthesis of crystalline barium titanate nanoparticles under bio-inspired conditions. Angew Chem Int Ed 45(39):6564–6566
45.
Zurück zum Zitat Viviani M, Lemaitre J, Buscaglia MT, Nanni P (2000) Low-temperature aqueous synthesis (LTAS) of BaTiO3: a statistical design of experiment approach. J Eur Ceram Soc 20(3):315–320 Viviani M, Lemaitre J, Buscaglia MT, Nanni P (2000) Low-temperature aqueous synthesis (LTAS) of BaTiO3: a statistical design of experiment approach. J Eur Ceram Soc 20(3):315–320
46.
Zurück zum Zitat Ciftci E, Rahaman MN, Shumsky M (2001) Hydrothermal precipitation and characterization of nanocrystalline BaTiO3 particles. J Mater Sci 36(20):4875–4882 Ciftci E, Rahaman MN, Shumsky M (2001) Hydrothermal precipitation and characterization of nanocrystalline BaTiO3 particles. J Mater Sci 36(20):4875–4882
47.
Zurück zum Zitat Liu C, Zou BS, Rondinone AJ, Zhang ZJ (2001) Sol–gel synthesis of free-standing ferroelectric lead zirconate titanate nanoparticles. J Am Chem Soc 123(18):4344–4345 Liu C, Zou BS, Rondinone AJ, Zhang ZJ (2001) Sol–gel synthesis of free-standing ferroelectric lead zirconate titanate nanoparticles. J Am Chem Soc 123(18):4344–4345
48.
Zurück zum Zitat Yang H, Xian T, Wei ZQ, Dai JF, Jiang JL, Feng WJ (2011) Size-controlled synthesis of BiFeO3 nanoparticles by a soft-chemistry route. J Sol-Gel Sci Technol 58:238–243 Yang H, Xian T, Wei ZQ, Dai JF, Jiang JL, Feng WJ (2011) Size-controlled synthesis of BiFeO3 nanoparticles by a soft-chemistry route. J Sol-Gel Sci Technol 58:238–243
49.
Zurück zum Zitat Hu Y, Fei L, Zhang Y, Yuan J, Wang Y, Gu HJ (2011) Synthesis of bismuth ferrite nanoparticles via a wet chemical route at low temperature. J Nanomaterials 2011:797639(1–6) Hu Y, Fei L, Zhang Y, Yuan J, Wang Y, Gu HJ (2011) Synthesis of bismuth ferrite nanoparticles via a wet chemical route at low temperature. J Nanomaterials 2011:797639(1–6)
50.
Zurück zum Zitat Flaschen SS (1955) An aqueous synthesis of barium titanate. J Am Chem Soc 77(23):6194–6194 Flaschen SS (1955) An aqueous synthesis of barium titanate. J Am Chem Soc 77(23):6194–6194
51.
Zurück zum Zitat Kiss K, Magder J, Vukasovich MS, Lockhart RJ (1966) Ferroelectrics of ultrafine particle size: I, synthesis of titanate powders of ultrafine particle size. J Am Ceram Soc 49(6):291–295 Kiss K, Magder J, Vukasovich MS, Lockhart RJ (1966) Ferroelectrics of ultrafine particle size: I, synthesis of titanate powders of ultrafine particle size. J Am Ceram Soc 49(6):291–295
52.
Zurück zum Zitat Kamiya H, Gomi K, Iida Y, Tanaka K, Yoshiyasu T, Kakiuchi T (2003) Preparation of highly dispersed ultrafine barium titanate powder by using microbial-derived surfactant. J Am Ceram Soc 86(12):2011–2018 Kamiya H, Gomi K, Iida Y, Tanaka K, Yoshiyasu T, Kakiuchi T (2003) Preparation of highly dispersed ultrafine barium titanate powder by using microbial-derived surfactant. J Am Ceram Soc 86(12):2011–2018
53.
Zurück zum Zitat Golubko NV, Yanovskaya MI, Golubko LA, Kovsman EP, Listoshina MB, Rotenberg BA (2001) Preparation of barium titanate and related materials by the alkoxide-hydroxide route. J. Sol-Gel Sci. Tech. 20(2):135–143 Golubko NV, Yanovskaya MI, Golubko LA, Kovsman EP, Listoshina MB, Rotenberg BA (2001) Preparation of barium titanate and related materials by the alkoxide-hydroxide route. J. Sol-Gel Sci. Tech. 20(2):135–143
54.
Zurück zum Zitat Bruno SA, Monson WL (1993) Process for preparing crystalline mixed metal oxides. US Patent 5242674 Bruno SA, Monson WL (1993) Process for preparing crystalline mixed metal oxides. US Patent 5242674
55.
Zurück zum Zitat Han JT, Huang YH, Wu XJ, Wu CL, Wei W, Peng B, Huang W, Goodenough JB (2006) Tunable synthesis of bismuth ferrites with various morphologies. Adv Mater 18:2145–2148 Han JT, Huang YH, Wu XJ, Wu CL, Wei W, Peng B, Huang W, Goodenough JB (2006) Tunable synthesis of bismuth ferrites with various morphologies. Adv Mater 18:2145–2148
56.
Zurück zum Zitat Wang YG, Xu G, Yang LL, Ren ZH, Wei X, Weng WJ, Du P, Shen G, Han GR (2007) Alkali metal ions-assisted controllable synthesis of bismuth ferrites by a hydrothermal method. J Am Ceram Soc 90:3673–3675 Wang YG, Xu G, Yang LL, Ren ZH, Wei X, Weng WJ, Du P, Shen G, Han GR (2007) Alkali metal ions-assisted controllable synthesis of bismuth ferrites by a hydrothermal method. J Am Ceram Soc 90:3673–3675
57.
Zurück zum Zitat Gao F, Yuan Y, Wang KF, Chen XY, Chen F, Liu J-M, Ren ZF (2006) Preparation and photoabsorption characterization of BiFeO3 nanowires. Appl Phys Lett 89:102506 (1–3) Gao F, Yuan Y, Wang KF, Chen XY, Chen F, Liu J-M, Ren ZF (2006) Preparation and photoabsorption characterization of BiFeO3 nanowires. Appl Phys Lett 89:102506 (1–3)
58.
Zurück zum Zitat Wang GM, Lin C, Liu ST, Deng QR, Mao YW, Wang SG (2018) Hydrothermal synthesis of bismuth ferrite with controllable phase structure, morphology and visible light photocatalytic activities. J Mater Sci Mater Electron 29(6):4926–4932 Wang GM, Lin C, Liu ST, Deng QR, Mao YW, Wang SG (2018) Hydrothermal synthesis of bismuth ferrite with controllable phase structure, morphology and visible light photocatalytic activities. J Mater Sci Mater Electron 29(6):4926–4932
59.
Zurück zum Zitat Han SH, Kim KS, Kim HG, Lee H-G, Kang H-W, Kim JS, Cheon CI (2010) Synthesis and characterization of multiferroic BiFeO3powders fabricated by hydrothermal method. Ceram Int 36:1365–1372 Han SH, Kim KS, Kim HG, Lee H-G, Kang H-W, Kim JS, Cheon CI (2010) Synthesis and characterization of multiferroic BiFeO3powders fabricated by hydrothermal method. Ceram Int 36:1365–1372
60.
Zurück zum Zitat Liu B, Hu BB, Du ZL (2011) Hydrothermal synthesis and magnetic properties of single-crystalline BiFeO3 nanowires. Chem Commun 47(28):8166–8168 Liu B, Hu BB, Du ZL (2011) Hydrothermal synthesis and magnetic properties of single-crystalline BiFeO3 nanowires. Chem Commun 47(28):8166–8168
61.
Zurück zum Zitat Wang YG, Xu G, Ren ZH, Wei X, Weng WJ, Du PY, Shen G, Han GR (2007) Mineralizer-assisted hydrothermal synthesis and characterization of BiFeO3 nanoparticles. J Am Ceram Soc 90:2615–2617 Wang YG, Xu G, Ren ZH, Wei X, Weng WJ, Du PY, Shen G, Han GR (2007) Mineralizer-assisted hydrothermal synthesis and characterization of BiFeO3 nanoparticles. J Am Ceram Soc 90:2615–2617
62.
Zurück zum Zitat Chen C, Cheng JR, Yu SW, Che LJ, Meng ZY (2006) Hydrothermal synthesis of perovskite bismuth ferrite crystallites. J Cryst Growth 291(1):135–139 Chen C, Cheng JR, Yu SW, Che LJ, Meng ZY (2006) Hydrothermal synthesis of perovskite bismuth ferrite crystallites. J Cryst Growth 291(1):135–139
63.
Zurück zum Zitat Hojamberdiev M, Xu Y, Wang F, Wang J, Liu J, Wang W (2009) Morphology-controlled hydrothermal synthesis of bismuth ferrite using various alkaline mineralizers. Ceramics-Silikáty 53(2):113–117 Hojamberdiev M, Xu Y, Wang F, Wang J, Liu J, Wang W (2009) Morphology-controlled hydrothermal synthesis of bismuth ferrite using various alkaline mineralizers. Ceramics-Silikáty 53(2):113–117
64.
Zurück zum Zitat Hennings D, Schreinemacher S (1992) Characterization of hydrothermal barium titanate. J Eur Ceram Soc 9(1):41–46 Hennings D, Schreinemacher S (1992) Characterization of hydrothermal barium titanate. J Eur Ceram Soc 9(1):41–46
65.
Zurück zum Zitat Waser R (1988) Solubility of hydrogen defects in doped and undoped BaTiO3. J Am Ceram Soc 71(1):58–63 Waser R (1988) Solubility of hydrogen defects in doped and undoped BaTiO3. J Am Ceram Soc 71(1):58–63
66.
Zurück zum Zitat Pithan C, Hennings D, Waser R (2005) Progress in the synthesis of nanocrystalline BaTiO3 powders for MLCC. Int J Appl Ceram Technol 2(1):1–14 Pithan C, Hennings D, Waser R (2005) Progress in the synthesis of nanocrystalline BaTiO3 powders for MLCC. Int J Appl Ceram Technol 2(1):1–14
67.
Zurück zum Zitat Chen DR, Jiao XL (2000) Solvothermal synthesis and characterization of barium titanate powders. J Am Ceram Soc 83(10):2637–2639 Chen DR, Jiao XL (2000) Solvothermal synthesis and characterization of barium titanate powders. J Am Ceram Soc 83(10):2637–2639
68.
Zurück zum Zitat Kwon SG, Choi K, Kim BI (2006) Solvothermal synthesis of nano-sized tetragonal barium titanate powders. Mater Lett 60(7):979–982 Kwon SG, Choi K, Kim BI (2006) Solvothermal synthesis of nano-sized tetragonal barium titanate powders. Mater Lett 60(7):979–982
69.
Zurück zum Zitat Komarneni S, Roy R, Li QH (1992) Microwave-hydrothermal synthesis of ceramic powders. Mater Res Bull 27(12):1393–1405 Komarneni S, Roy R, Li QH (1992) Microwave-hydrothermal synthesis of ceramic powders. Mater Res Bull 27(12):1393–1405
70.
Zurück zum Zitat Niederberger M, Pinna N, Polleux J, Antonietti M (2004) A general soft-chemistry route to perovskites and related materials: synthesis of BaTiO3, BaZrO3, and LiNbO3 nanoparticles. Angew Chem 43(17):2270–2273 Niederberger M, Pinna N, Polleux J, Antonietti M (2004) A general soft-chemistry route to perovskites and related materials: synthesis of BaTiO3, BaZrO3, and LiNbO3 nanoparticles. Angew Chem 43(17):2270–2273
71.
Zurück zum Zitat Jhung SH, Lee JH, Yoon JW, Hwang YK, Hwang JS, Park SE, Chang JS (2004) Effects of reaction conditions in microwave synthesis of nanocrystalline barium titanate. Mater Lett 58(25):3161–3165 Jhung SH, Lee JH, Yoon JW, Hwang YK, Hwang JS, Park SE, Chang JS (2004) Effects of reaction conditions in microwave synthesis of nanocrystalline barium titanate. Mater Lett 58(25):3161–3165
72.
Zurück zum Zitat Sun WA, Li CH, Li JQ, Liu W (2006) Microwave-hydrothermal synthesis of tetragonal BaTiO3 under various conditions. Mater Chem Phys 97(2–3):481–487 Sun WA, Li CH, Li JQ, Liu W (2006) Microwave-hydrothermal synthesis of tetragonal BaTiO3 under various conditions. Mater Chem Phys 97(2–3):481–487
73.
Zurück zum Zitat Pązik R, Hreniak D, Strek W (2007) Microwave driven hydrothermal synthesis of Ba1−xSrxTiO3 nanoparticles. Mater Res Bull 42(7):1188–1194 Pązik R, Hreniak D, Strek W (2007) Microwave driven hydrothermal synthesis of Ba1−xSrxTiO3 nanoparticles. Mater Res Bull 42(7):1188–1194
74.
Zurück zum Zitat Zhu XH, Hang QM, Xing ZB, Yang Y, Zhu JM, Liu ZG, Ming NB, Zhou P, Song Y, Li ZS, Yu T, Zou ZG (2011) Microwave hydrothermal synthesis, structural characterization, and visible-light photocatalytic activities of single-crystalline bismuth ferric nanocrystals. J Am Ceram Soc 94(8):2688–2693 Zhu XH, Hang QM, Xing ZB, Yang Y, Zhu JM, Liu ZG, Ming NB, Zhou P, Song Y, Li ZS, Yu T, Zou ZG (2011) Microwave hydrothermal synthesis, structural characterization, and visible-light photocatalytic activities of single-crystalline bismuth ferric nanocrystals. J Am Ceram Soc 94(8):2688–2693
75.
Zurück zum Zitat Joshi UA, Jang JS, Borse PH, Lee JS (2008) Microwave synthesis of single-crystalline perovskite BiFeO3 nanocubes for photoelectrode and photocatalytic applications. Appl Phys Lett 92(24):242106(1–3) Joshi UA, Jang JS, Borse PH, Lee JS (2008) Microwave synthesis of single-crystalline perovskite BiFeO3 nanocubes for photoelectrode and photocatalytic applications. Appl Phys Lett 92(24):242106(1–3)
76.
Zurück zum Zitat Swihart M (2003) Vapor-phase synthesis of nanoparticles. Curr Opin Colloid Interface Sci 8(1):127–133 Swihart M (2003) Vapor-phase synthesis of nanoparticles. Curr Opin Colloid Interface Sci 8(1):127–133
77.
Zurück zum Zitat Pratsinis SE, Mastrangelo SVR (1989) Material synthesis in aerosol reactors. Chem Eng Prog 85:62–66 Pratsinis SE, Mastrangelo SVR (1989) Material synthesis in aerosol reactors. Chem Eng Prog 85:62–66
78.
Zurück zum Zitat Wu MK, Windeler RS, Steiner CKR, Börs T, Friedlander SK (1993) Controlled synthesis of nanosized particles by aerosol processes. Aerosol Sci Technol 19(4):527–548 Wu MK, Windeler RS, Steiner CKR, Börs T, Friedlander SK (1993) Controlled synthesis of nanosized particles by aerosol processes. Aerosol Sci Technol 19(4):527–548
79.
Zurück zum Zitat Seol KS, Tomita S, Takeuchi K, Miyagawa T, Katagiri T, Ohki Y (2002) Gas-phase production of monodisperse lead zirconate titanate nanoparticles. Appl Phys Lett 81:1893–1895 Seol KS, Tomita S, Takeuchi K, Miyagawa T, Katagiri T, Ohki Y (2002) Gas-phase production of monodisperse lead zirconate titanate nanoparticles. Appl Phys Lett 81:1893–1895
80.
Zurück zum Zitat Joshi UA, Yoon S, Baik S, Lee JS (2006) Surfactant-free hydrothermal synthesis of highly tetragonal barium titanate nanowires: a structural investigation. J. Phys. Chem. B. 110(25):12249–12256 Joshi UA, Yoon S, Baik S, Lee JS (2006) Surfactant-free hydrothermal synthesis of highly tetragonal barium titanate nanowires: a structural investigation. J. Phys. Chem. B. 110(25):12249–12256
81.
Zurück zum Zitat Urban JJ, Yun WS, Gu Q, Park H (2002) Synthesis of single-crystalline perovskite nanorods composed of barium titanate and strontium titanate. J Am Chem Soc 124(7):1186–1187 Urban JJ, Yun WS, Gu Q, Park H (2002) Synthesis of single-crystalline perovskite nanorods composed of barium titanate and strontium titanate. J Am Chem Soc 124(7):1186–1187
82.
Zurück zum Zitat Gu H, Hu Y, You J, Hu Z, Yuan Y, Zhang T (2007) Characterization of single-crystalline PbTiO3 nanowire growth via surfactant-free hydrothermal method. J Appl Phys 101:024319(1–7) Gu H, Hu Y, You J, Hu Z, Yuan Y, Zhang T (2007) Characterization of single-crystalline PbTiO3 nanowire growth via surfactant-free hydrothermal method. J Appl Phys 101:024319(1–7)
83.
Zurück zum Zitat Hu Y, Gu H, Sun X, You J, Wang J (2006) Photoluminescence and Raman scattering studies on PbTiO3 nanowires fabricated by hydrothermal method at low temperature. Appl Phys Lett 88:193120(1–3) Hu Y, Gu H, Sun X, You J, Wang J (2006) Photoluminescence and Raman scattering studies on PbTiO3 nanowires fabricated by hydrothermal method at low temperature. Appl Phys Lett 88:193120(1–3)
84.
Zurück zum Zitat Wang J, Durussel A, Sandu CS, Sahini MG, He ZB, Setter N (2012) Mechanism of hydrothermal growth of ferroelectric PZT nanowires. J Cryst Growth 347(1):1–6 Wang J, Durussel A, Sandu CS, Sahini MG, He ZB, Setter N (2012) Mechanism of hydrothermal growth of ferroelectric PZT nanowires. J Cryst Growth 347(1):1–6
85.
Zurück zum Zitat Mao YB, Banerjee S, Wong SS (2003) Large-scale synthesis of single-crystalline perovskite nanostructures. J Am Chem Soc 125(51):15718–15719 Mao YB, Banerjee S, Wong SS (2003) Large-scale synthesis of single-crystalline perovskite nanostructures. J Am Chem Soc 125(51):15718–15719
86.
Zurück zum Zitat Deng H, Qiu Y, Yang S (2009) General surfactant-free synthesis of MTiO3 (M = Ba, Sr, Pb) perovskite nanostrips. J Mater Chem 19:976–982 Deng H, Qiu Y, Yang S (2009) General surfactant-free synthesis of MTiO3 (M = Ba, Sr, Pb) perovskite nanostrips. J Mater Chem 19:976–982
87.
Zurück zum Zitat Cai Z, Xing X, Yu R, Sun X, Liu G (2007) Morphology-controlled synthesis of lead titanate powders. Inorg Chem 46(18):7423–7427 Cai Z, Xing X, Yu R, Sun X, Liu G (2007) Morphology-controlled synthesis of lead titanate powders. Inorg Chem 46(18):7423–7427
88.
Zurück zum Zitat Bao N, Shen L, Gupta A, Tatarenko A, Srinivasan G, Yanagisawa K (2009) Size-controlled one-dimensional monocrystalline BaTiO3 nanostructures. Appl Phys Lett 94:253109(1–3) Bao N, Shen L, Gupta A, Tatarenko A, Srinivasan G, Yanagisawa K (2009) Size-controlled one-dimensional monocrystalline BaTiO3 nanostructures. Appl Phys Lett 94:253109(1–3)
89.
Zurück zum Zitat Lu X, Zhang D, Zhao Q, Wang C, Zhang W, Wei Y (2006) Large-scale synthesis of necklace-like single-crystalline PbTiO3 nanowires. Macromol Rapid Commun 27(1):76–80 Lu X, Zhang D, Zhao Q, Wang C, Zhang W, Wei Y (2006) Large-scale synthesis of necklace-like single-crystalline PbTiO3 nanowires. Macromol Rapid Commun 27(1):76–80
90.
Zurück zum Zitat Chen X, Xu S, Yao N, Shi Y (2010) 1.6 V Nanogenerator for mechanical energy harvesting using PZT nanofibers. Nano Lett 10(6):2133–2137 Chen X, Xu S, Yao N, Shi Y (2010) 1.6 V Nanogenerator for mechanical energy harvesting using PZT nanofibers. Nano Lett 10(6):2133–2137
91.
Zurück zum Zitat Teo WE, Ramkrishna S (2006) A review on electrospinning design and nanofibre assemblies. Nanotechnology. 17(14):R89–106 Teo WE, Ramkrishna S (2006) A review on electrospinning design and nanofibre assemblies. Nanotechnology. 17(14):R89–106
92.
Zurück zum Zitat Liu B, Hu B, Du Z (2011) Hydrothermal synthesis and magnetic properties of single-crystalline BiFeO3 nanowires. Chem Commun 47:8166–8168 Liu B, Hu B, Du Z (2011) Hydrothermal synthesis and magnetic properties of single-crystalline BiFeO3 nanowires. Chem Commun 47:8166–8168
93.
Zurück zum Zitat Zhang T, Jin CG, Qian T, Lu XL, Bai JM, Li XG (2004) Hydrothermal synthesis of single-crystalline La0.5Ca0.5MnO3 nanowires at low temperature. J Mater Chem 14:2787–2789 Zhang T, Jin CG, Qian T, Lu XL, Bai JM, Li XG (2004) Hydrothermal synthesis of single-crystalline La0.5Ca0.5MnO3 nanowires at low temperature. J Mater Chem 14:2787–2789
94.
Zurück zum Zitat Zhu D, Zhu H, Zhang YH (2002) Hydrothermal synthesis of single-crystal La0.5Sr0.5MnO3 nanowire under mild conditions. J Phys Condens Matter 14:L519–L524 Zhu D, Zhu H, Zhang YH (2002) Hydrothermal synthesis of single-crystal La0.5Sr0.5MnO3 nanowire under mild conditions. J Phys Condens Matter 14:L519–L524
95.
Zurück zum Zitat Zhu D, Zhu H, Zhang Y (2002) Hydrothermal synthesis of La0.5Ba0.5MnO3 nanowires. Appl Phys Lett 80(9):1634–1636 Zhu D, Zhu H, Zhang Y (2002) Hydrothermal synthesis of La0.5Ba0.5MnO3 nanowires. Appl Phys Lett 80(9):1634–1636
96.
Zurück zum Zitat Rao SS, Anuradha KN, Sarangi S, Bhat SV (2005) Weakening of charge order and antiferromagnetic to ferromagnetic switch over in Pr0.5Ca0.5MnO3 nanowires. Appl Phys Lett 87:182503(1–3) Rao SS, Anuradha KN, Sarangi S, Bhat SV (2005) Weakening of charge order and antiferromagnetic to ferromagnetic switch over in Pr0.5Ca0.5MnO3 nanowires. Appl Phys Lett 87:182503(1–3)
97.
Zurück zum Zitat McQuaid RGP, McMillen M, Chang LW, Gruverman A, Gregg JM (2012) Domain wall propagation in meso- and nanoscale ferroelectrics. J Phys Condens Matter 24:024204 (1–6) McQuaid RGP, McMillen M, Chang LW, Gruverman A, Gregg JM (2012) Domain wall propagation in meso- and nanoscale ferroelectrics. J Phys Condens Matter 24:024204 (1–6)
98.
Zurück zum Zitat Schilling A, Bowman RM, Catalan G, Scott JF, Gregg JM (2007) Morphological control of polar orientation in single-crystal ferroelectric nanowires. Nano Lett 7:3787–3791 Schilling A, Bowman RM, Catalan G, Scott JF, Gregg JM (2007) Morphological control of polar orientation in single-crystal ferroelectric nanowires. Nano Lett 7:3787–3791
99.
Zurück zum Zitat Padture NP, Wei X (2003) Hydrothermal synthesis of thin films of barium titanate ceramic nanotubes at 200 °C. J Am Ceram Soc 86(12):2215–2217 Padture NP, Wei X (2003) Hydrothermal synthesis of thin films of barium titanate ceramic nanotubes at 200 °C. J Am Ceram Soc 86(12):2215–2217
100.
Zurück zum Zitat Singh S, Krupanidhi SB (2007) Synthesis and structural characterization of Ba0.6Sr0.4TiO3 nanotubes. Phys Lett A 367:356–359 Singh S, Krupanidhi SB (2007) Synthesis and structural characterization of Ba0.6Sr0.4TiO3 nanotubes. Phys Lett A 367:356–359
101.
Zurück zum Zitat Mao Y, Banerjee S, Wong SS (2003) Hydrothermal synthesis of perovskite nanotubes. Chem Commun 3(3):408–409 Mao Y, Banerjee S, Wong SS (2003) Hydrothermal synthesis of perovskite nanotubes. Chem Commun 3(3):408–409
102.
Zurück zum Zitat Tian TL, Dong JP, Xu JQ (2016) Direct electrodeposition of highly ordered gold nanotube arrays for use in non-enzymatic amperometric sensing of glucose. Microchim Acta 183:1925–1932 Tian TL, Dong JP, Xu JQ (2016) Direct electrodeposition of highly ordered gold nanotube arrays for use in non-enzymatic amperometric sensing of glucose. Microchim Acta 183:1925–1932
103.
Zurück zum Zitat Kasera S, Biedermann F, Baumberg JJ, Scherman OA, Mahajan S (2012) Quantitative SERS using the sequestration of small molecules inside precise plasmonic nanoconstructs. Nano Lett 12:5924–5928 Kasera S, Biedermann F, Baumberg JJ, Scherman OA, Mahajan S (2012) Quantitative SERS using the sequestration of small molecules inside precise plasmonic nanoconstructs. Nano Lett 12:5924–5928
104.
Zurück zum Zitat Li Y, Duan GT, Liu GQ, Cai WP (2013) Physical processes-aided periodic micro/nanostructured arrays by colloidal template technique: fabrication and applications. Chem Soc Rev 42:3614–3627 Li Y, Duan GT, Liu GQ, Cai WP (2013) Physical processes-aided periodic micro/nanostructured arrays by colloidal template technique: fabrication and applications. Chem Soc Rev 42:3614–3627
105.
Zurück zum Zitat Ding T, Sigle DO, Hermann LO, Wolverson D, Baumberg JJ (2014) Nanoimprint lithography of Al nanovoids for seep-UV SERSACS. Appl Mater Interfaces 6:17358–17363 Ding T, Sigle DO, Hermann LO, Wolverson D, Baumberg JJ (2014) Nanoimprint lithography of Al nanovoids for seep-UV SERSACS. Appl Mater Interfaces 6:17358–17363
106.
Zurück zum Zitat Limmer SJ, Seraji S, Wu Y, Chou TP, Nguyen C, Cao GZ (2002) Template-based growth of various oxide nanorods by sol–gel electrophoresis. Adv Funct Mater 12:59–64 Limmer SJ, Seraji S, Wu Y, Chou TP, Nguyen C, Cao GZ (2002) Template-based growth of various oxide nanorods by sol–gel electrophoresis. Adv Funct Mater 12:59–64
107.
Zurück zum Zitat Anuradha TV (2014) Template-assisted sol–gel synthesis of nanocrystalline BaTiO3. J. Chem. 7(3):894–898 Anuradha TV (2014) Template-assisted sol–gel synthesis of nanocrystalline BaTiO3. J. Chem. 7(3):894–898
108.
Zurück zum Zitat Boucher R, Renz P, Li C, Fuhrlich T, Bauch J, Yoon KH, Lupascu DC. Large coercivity and polarization of sol–gel derived BaTiO3 nanowires. J Appl Phys 110(6):064112(1–5) Boucher R, Renz P, Li C, Fuhrlich T, Bauch J, Yoon KH, Lupascu DC. Large coercivity and polarization of sol–gel derived BaTiO3 nanowires. J Appl Phys 110(6):064112(1–5)
109.
Zurück zum Zitat Zhao L, Steinhart M, Yu J, Gösele U (2006) Lead titanate nano- and microtubes. J Mater Res 21:685–690 Zhao L, Steinhart M, Yu J, Gösele U (2006) Lead titanate nano- and microtubes. J Mater Res 21:685–690
110.
Zurück zum Zitat Liu L, Ning T, Ren Y, Sun Z, Wang F, Zhou W, Xie S, Song L, Luo S, Liu D, Shen J, Ma W, Zhou Y (2008) Synthesis, characterization, photoluminescence and ferroelectric properties of PbTiO3 nanotube arrays. Mater Sci Eng, B 149(1):41–46 Liu L, Ning T, Ren Y, Sun Z, Wang F, Zhou W, Xie S, Song L, Luo S, Liu D, Shen J, Ma W, Zhou Y (2008) Synthesis, characterization, photoluminescence and ferroelectric properties of PbTiO3 nanotube arrays. Mater Sci Eng, B 149(1):41–46
111.
Zurück zum Zitat Rørvik PM, Tadanaga K, Tatsumisago M, Grande T, Einarsrud MA (2009) Template-assisted synthesis of PbTiO3 nanotubes. J Eur Ceram Soc 29(12):2575–2579 Rørvik PM, Tadanaga K, Tatsumisago M, Grande T, Einarsrud MA (2009) Template-assisted synthesis of PbTiO3 nanotubes. J Eur Ceram Soc 29(12):2575–2579
112.
Zurück zum Zitat Zhang XY, Zhao X, Lai CW, Wang J, Tang XG, Dai JY (2004) Synthesis and piezoresponse of highly ordered Pb(Zr0.53Ti0.47)O3 nanowire arrays. Appl Phys Lett 85(18):4190–4192 Zhang XY, Zhao X, Lai CW, Wang J, Tang XG, Dai JY (2004) Synthesis and piezoresponse of highly ordered Pb(Zr0.53Ti0.47)O3 nanowire arrays. Appl Phys Lett 85(18):4190–4192
113.
Zurück zum Zitat Wen T, Zhang J, Chou TP, Limmer SJ, Cao G (2005) Template-based growth of oxide nanorod arrays by centrifugation. J Sol-Gel Sci Technol 33(2):193–200 Wen T, Zhang J, Chou TP, Limmer SJ, Cao G (2005) Template-based growth of oxide nanorod arrays by centrifugation. J Sol-Gel Sci Technol 33(2):193–200
114.
Zurück zum Zitat Shen ZK, Chen ZH, Li H, Qu XP, Chen Y, Liu R (2011) Nanoembossing and piezoelectricity of ferroelectric Pb(Zr0.3Ti0.7)O3 nanowire arrays. Appl Surf Sci 257(21):8820–8823 Shen ZK, Chen ZH, Li H, Qu XP, Chen Y, Liu R (2011) Nanoembossing and piezoelectricity of ferroelectric Pb(Zr0.3Ti0.7)O3 nanowire arrays. Appl Surf Sci 257(21):8820–8823
115.
Zurück zum Zitat Shankar K, Raychaudhuri A (2004) Growth of an ordered array of oriented manganite nanowires in alumina templates. Nanotechnology 15(9):1312–1316 Shankar K, Raychaudhuri A (2004) Growth of an ordered array of oriented manganite nanowires in alumina templates. Nanotechnology 15(9):1312–1316
116.
Zurück zum Zitat Chen F, Liu HW, Wang KF, Yu H, Dong S, Chen XY, Jiang XP, Ren ZF, Liu J-M (2005) Synthesis and characterization of La0.825Sr0.175MnO3 nanowires. J Phys Condens Matter 17:L467–L475 Chen F, Liu HW, Wang KF, Yu H, Dong S, Chen XY, Jiang XP, Ren ZF, Liu J-M (2005) Synthesis and characterization of La0.825Sr0.175MnO3 nanowires. J Phys Condens Matter 17:L467–L475
117.
Zurück zum Zitat Hernandez BA, Chang KS, Fisher ER, Dohout PK (2002) Sol–gel template synthesis and characterization of BaTiO3 and PbTiO3 nanotubes. Chem Mater 14:480–482 Hernandez BA, Chang KS, Fisher ER, Dohout PK (2002) Sol–gel template synthesis and characterization of BaTiO3 and PbTiO3 nanotubes. Chem Mater 14:480–482
118.
Zurück zum Zitat Jang GSH, Bernadette A, Fisher Ellen R, Dorhout PK (2002) Sol–gel template synthesis and characterization of PT, PZ and PZT nanotubes. J Korean Chem Soc 46(3):242–251 Jang GSH, Bernadette A, Fisher Ellen R, Dorhout PK (2002) Sol–gel template synthesis and characterization of PT, PZ and PZT nanotubes. J Korean Chem Soc 46(3):242–251
119.
Zurück zum Zitat Luo Y, Szafraniak I, Zakharov ND, Nagarajan V, Steinhart M, Wehrspohn RB, Wendorff JH, Ramesh R, Alexe M (2003) Nanoshell tubes of ferroelectric lead zirconate titanate and barium titanate. Appl Phys Lett 83:440–442 Luo Y, Szafraniak I, Zakharov ND, Nagarajan V, Steinhart M, Wehrspohn RB, Wendorff JH, Ramesh R, Alexe M (2003) Nanoshell tubes of ferroelectric lead zirconate titanate and barium titanate. Appl Phys Lett 83:440–442
120.
Zurück zum Zitat Kim J, Yang SA, Choi YC, Han JK, Jeong KO, Yun YJ, Kim DJ, Yang SM, Yoon D, Cheong H, Chang KS, Noh TW, Bu SD (2008) Ferroelectricity in highly ordered arrays of ultra-thin-walled Pb(Zr, Ti)O3 nanotubes composed of nanometer-sized perovskite crystallites. Nano Lett 8(7):1813–1818 Kim J, Yang SA, Choi YC, Han JK, Jeong KO, Yun YJ, Kim DJ, Yang SM, Yoon D, Cheong H, Chang KS, Noh TW, Bu SD (2008) Ferroelectricity in highly ordered arrays of ultra-thin-walled Pb(Zr, Ti)O3 nanotubes composed of nanometer-sized perovskite crystallites. Nano Lett 8(7):1813–1818
121.
Zurück zum Zitat Xu SY, Shi Y (2009) Power generation from piezoelectric lead zirconate titanate nanotubes. J Phys D: Appl Phys 42(8):085301(1–5) Xu SY, Shi Y (2009) Power generation from piezoelectric lead zirconate titanate nanotubes. J Phys D: Appl Phys 42(8):085301(1–5)
122.
Zurück zum Zitat Nourmohammadi A, Bahrevar MA, Hietschold M (2009) Template-based electrophoretic deposition of perovskite PZT nanotubes. J. Alloys Compd. 473:467–472 Nourmohammadi A, Bahrevar MA, Hietschold M (2009) Template-based electrophoretic deposition of perovskite PZT nanotubes. J. Alloys Compd. 473:467–472
123.
Zurück zum Zitat Park TJ, Mao Y, Wong SS (2004) Synthesis and characterization of multiferroic BiFeO3 nanotubes. Chem Commun 23(23):2708–2709 Park TJ, Mao Y, Wong SS (2004) Synthesis and characterization of multiferroic BiFeO3 nanotubes. Chem Commun 23(23):2708–2709
124.
Zurück zum Zitat Singh S, Krupanidhi SB (2008) Fabrication, structural characterization and formation mechanism of multiferroic BiFeO3 nanotubes. J Nanosci Nanotechnol 8(1):335–339 Singh S, Krupanidhi SB (2008) Fabrication, structural characterization and formation mechanism of multiferroic BiFeO3 nanotubes. J Nanosci Nanotechnol 8(1):335–339
125.
Zurück zum Zitat Zhang XY, Lai CW, Zhao X, Wang DY, Dai JY (2005) Synthesis and ferroelectric properties of multiferroic BiFeO3 nanotube arrays. Appl Phys Lett 87:143102(1–3) Zhang XY, Lai CW, Zhao X, Wang DY, Dai JY (2005) Synthesis and ferroelectric properties of multiferroic BiFeO3 nanotube arrays. Appl Phys Lett 87:143102(1–3)
126.
Zurück zum Zitat Xu X, Qian T, Zhang G, Zhang T, Li G, Wang W, Li X (2007) Fabrication and magnetic properties of multiferroic BiFeO3 nanotube arrays. Chem Lett 36(1):112–113 Xu X, Qian T, Zhang G, Zhang T, Li G, Wang W, Li X (2007) Fabrication and magnetic properties of multiferroic BiFeO3 nanotube arrays. Chem Lett 36(1):112–113
127.
Zurück zum Zitat Wei J, Xue D, Xu Y (2008) Photoabsorption characterization and magnetic property of multiferroic BiFeO3 nanotubes synthesized by a facile sol–gel template process. Scripta Mater 58:45–48 Wei J, Xue D, Xu Y (2008) Photoabsorption characterization and magnetic property of multiferroic BiFeO3 nanotubes synthesized by a facile sol–gel template process. Scripta Mater 58:45–48
128.
Zurück zum Zitat Singh S, Krupanidhi SB (2007) Synthesis and structural characterization of the antiferroelectric lead zirconate nanotubes by pulsed laser deposition. Appl Phys A Mater Sci Process 87(1):27–30 Singh S, Krupanidhi SB (2007) Synthesis and structural characterization of the antiferroelectric lead zirconate nanotubes by pulsed laser deposition. Appl Phys A Mater Sci Process 87(1):27–30
129.
Zurück zum Zitat Nourmohammadi A, Bahrevar MA, Schulze S, Hietschold M (2008) Electrodeposition of lead zirconate titanate nanotubes. J Mater Sci 43(14):4753–4759 Nourmohammadi A, Bahrevar MA, Schulze S, Hietschold M (2008) Electrodeposition of lead zirconate titanate nanotubes. J Mater Sci 43(14):4753–4759
130.
Zurück zum Zitat Alexe M, Hesse D, Schmidt V, Senz S, Fan HJ, Zacharias M, Gösele U (2006) Ferroelectric nanotubes fabricated using nanowires as positive templates. Appl Phys Lett 89:172907 (1–3) Alexe M, Hesse D, Schmidt V, Senz S, Fan HJ, Zacharias M, Gösele U (2006) Ferroelectric nanotubes fabricated using nanowires as positive templates. Appl Phys Lett 89:172907 (1–3)
131.
Zurück zum Zitat Sousa CT, Lopes AML, Proenca MP, Leitão DC, Correia JG, Araújo JP (2009) Rapid synthesis of ordered manganite nanotubes by microwave irradiation in alumina templates. J. Nanosci Nanotechol. 9(10):6084–6099 Sousa CT, Lopes AML, Proenca MP, Leitão DC, Correia JG, Araújo JP (2009) Rapid synthesis of ordered manganite nanotubes by microwave irradiation in alumina templates. J. Nanosci Nanotechol. 9(10):6084–6099
132.
Zurück zum Zitat Levy P, Leyva AG, Troiani HE, Sánchez RD (2003) Nanotubes of rare-earth manganese oxide. Appl Phys Lett 83:5247–5249 Levy P, Leyva AG, Troiani HE, Sánchez RD (2003) Nanotubes of rare-earth manganese oxide. Appl Phys Lett 83:5247–5249
133.
Zurück zum Zitat G. Zhang, J. Chen. Synthesis and Application of La0.59Ca0.41CoO3 Nanotubes. J. Electrochem. Soc. 152(10) (2005) A2069-A2073 G. Zhang, J. Chen. Synthesis and Application of La0.59Ca0.41CoO3 Nanotubes. J. Electrochem. Soc. 152(10) (2005) A2069-A2073
134.
Zurück zum Zitat Tagliazucchi M, Sanchez RD, Troiani HE, Calvo EJ (2006) Synthesis of lanthanum nickelate perovskite nanotubes by using a template-inorganic precursor. Solid State Commun 137:212–215 Tagliazucchi M, Sanchez RD, Troiani HE, Calvo EJ (2006) Synthesis of lanthanum nickelate perovskite nanotubes by using a template-inorganic precursor. Solid State Commun 137:212–215
135.
Zurück zum Zitat Zhu XH, Evans PR, Byrne D, Schilling A, Douglas C, Pollard RJ, Bowman RM, Gregg JM, Morrison FD, Scott JF (2006) Perovskite lead zirconium titanate nanorings: towards nanoscale ferroelectric “Solenoids”? Appl Phys Lett 89:122913(1–3) Zhu XH, Evans PR, Byrne D, Schilling A, Douglas C, Pollard RJ, Bowman RM, Gregg JM, Morrison FD, Scott JF (2006) Perovskite lead zirconium titanate nanorings: towards nanoscale ferroelectric “Solenoids”? Appl Phys Lett 89:122913(1–3)
136.
Zurück zum Zitat Byrne D, Schilling A, Scott JF, Gregg JM (2008) Ordered arrays of lead zirconium titanate nanorings. Nanotechnology 19:165608(1–5) Byrne D, Schilling A, Scott JF, Gregg JM (2008) Ordered arrays of lead zirconium titanate nanorings. Nanotechnology 19:165608(1–5)
137.
Zurück zum Zitat Tian G, Chen D, Yao J, Luo Q, Fan Z, Zeng M, Zhang Z, Dai J, Gao X, Liu J (2017) BiFeO3 nanorings synthesized via AAO template-assisted pulsed laser deposition and ion beam etching. RSC Adv. 7:41210–41216 Tian G, Chen D, Yao J, Luo Q, Fan Z, Zeng M, Zhang Z, Dai J, Gao X, Liu J (2017) BiFeO3 nanorings synthesized via AAO template-assisted pulsed laser deposition and ion beam etching. RSC Adv. 7:41210–41216
138.
Zurück zum Zitat Han H, Ji R, Park YJ, Lee SK, Rhun GL, Alexe M, Nielsch K, Hesse D, Gösele U, Baik S (2009) Wafer-scale arrays of epitaxial ferroelectric nanodiscs and nanorings. Nanotechnology 20:015301(1–6) Han H, Ji R, Park YJ, Lee SK, Rhun GL, Alexe M, Nielsch K, Hesse D, Gösele U, Baik S (2009) Wafer-scale arrays of epitaxial ferroelectric nanodiscs and nanorings. Nanotechnology 20:015301(1–6)
139.
Zurück zum Zitat Wu J, Xue D (2010) In situ Precursor-template route to semi-ordered NaNbO3 nanobelt arrays. Nanoscale Res Lett 6:14(1–8) Wu J, Xue D (2010) In situ Precursor-template route to semi-ordered NaNbO3 nanobelt arrays. Nanoscale Res Lett 6:14(1–8)
140.
Zurück zum Zitat Tanaka H (2015) Epitaxial growth of oxide films and nanostructures. In: Kuech TF (ed) Handbook of crystal growth thin films & epitaxy, 2nd edn. Elsevier, pp 555–604 Tanaka H (2015) Epitaxial growth of oxide films and nanostructures. In: Kuech TF (ed) Handbook of crystal growth thin films & epitaxy, 2nd edn. Elsevier, pp 555–604
141.
Zurück zum Zitat Yoshimoto M, Sasaki A, Akiba S (2004) Nanoscale epitaxial growth control of oxide thin films by laser molecular beam epitaxy—towards oxide nanoelectronics. Sci Technol Adv Mater 5(4):527–532 Yoshimoto M, Sasaki A, Akiba S (2004) Nanoscale epitaxial growth control of oxide thin films by laser molecular beam epitaxy—towards oxide nanoelectronics. Sci Technol Adv Mater 5(4):527–532
142.
Zurück zum Zitat Schlom DG, Chen LQ, Pan XQ, Schmehl A, Zurbuchen MA (2008) A thin film approach to engineering functionality into oxides. J Am Ceram Soc 91(8):2429–2454 Schlom DG, Chen LQ, Pan XQ, Schmehl A, Zurbuchen MA (2008) A thin film approach to engineering functionality into oxides. J Am Ceram Soc 91(8):2429–2454
143.
Zurück zum Zitat Smith HM, Turner AF (1965) Vacuum deposited thin films using a ruby laser. Appl Opt 4:147–148 Smith HM, Turner AF (1965) Vacuum deposited thin films using a ruby laser. Appl Opt 4:147–148
144.
Zurück zum Zitat Fukushima J, Kodaira K, Matsushita T (1984) Preparation of ferroelectric PZT films by thermal decomposition of organometallic compounds. J Mater Sci 19:595–598 Fukushima J, Kodaira K, Matsushita T (1984) Preparation of ferroelectric PZT films by thermal decomposition of organometallic compounds. J Mater Sci 19:595–598
145.
Zurück zum Zitat Budd KD, Dey SK, Payne DA (1985) Sol–gel processing of PbTiO3, PbZrO3, PZT and PLZT thin films. Brit. Ceram. Soc. Proc. 36:107–121 Budd KD, Dey SK, Payne DA (1985) Sol–gel processing of PbTiO3, PbZrO3, PZT and PLZT thin films. Brit. Ceram. Soc. Proc. 36:107–121
146.
Zurück zum Zitat Schwartz RW (1997) Chemical solution deposition of perovskite thin films. Chem Mater 9(11):2325–2340 Schwartz RW (1997) Chemical solution deposition of perovskite thin films. Chem Mater 9(11):2325–2340
147.
Zurück zum Zitat Bassiri-Gharb N, Bastanib Y, Bernal A (2014) Chemical solution growth of ferroelectric oxide thin films and nanostructure. Chem Soc Rev 43:2125–2140 Bassiri-Gharb N, Bastanib Y, Bernal A (2014) Chemical solution growth of ferroelectric oxide thin films and nanostructure. Chem Soc Rev 43:2125–2140
148.
Zurück zum Zitat Zhang Q, Sando D, Nagarajan V (2016) Chemical route derived bismuth ferrite thin films and nanomaterials. J Mater Chem C 4(19):4092–4124 Zhang Q, Sando D, Nagarajan V (2016) Chemical route derived bismuth ferrite thin films and nanomaterials. J Mater Chem C 4(19):4092–4124
149.
Zurück zum Zitat Stinton DP, Besmann TM, Lowden RA (1988) Advanced ceramic by chemical vapor deposition techniques. Am Ceram Soc Bull 67:350–355 Stinton DP, Besmann TM, Lowden RA (1988) Advanced ceramic by chemical vapor deposition techniques. Am Ceram Soc Bull 67:350–355
150.
Zurück zum Zitat Senateur JP, Dubourdieu C, Weiss F, Rosina M, Abrutis A (2000) Pulsed injection MOCVD of functional electronic oxides. Adv Mater Opt Electron 10(3–5):155–161 Senateur JP, Dubourdieu C, Weiss F, Rosina M, Abrutis A (2000) Pulsed injection MOCVD of functional electronic oxides. Adv Mater Opt Electron 10(3–5):155–161
151.
Zurück zum Zitat Schafer P, Waser R (2000) MOCVD of perovskite thin films using an aerosol-assisted liquid delivery system. Adv Mater Opt Electron 10(3–5):169–175 Schafer P, Waser R (2000) MOCVD of perovskite thin films using an aerosol-assisted liquid delivery system. Adv Mater Opt Electron 10(3–5):169–175
152.
Zurück zum Zitat Wright PJ, Anthony CJ, Crosbie MLJ, Donohue PP, Lane PA, Todd MA (2004) CVD of oxide materials for thermal imaging—the role of precursor chemistry. J Mater Chem 14:3251–3258 Wright PJ, Anthony CJ, Crosbie MLJ, Donohue PP, Lane PA, Todd MA (2004) CVD of oxide materials for thermal imaging—the role of precursor chemistry. J Mater Chem 14:3251–3258
153.
Zurück zum Zitat Wang HB, Meng GY, Peng DK (2000) Aerosol and plasma assisted chemical vapor deposition process for multicomponent oxide La0.8Sr0.2MnO3 thin film. Thin Solid Films 368:275–278 Wang HB, Meng GY, Peng DK (2000) Aerosol and plasma assisted chemical vapor deposition process for multicomponent oxide La0.8Sr0.2MnO3 thin film. Thin Solid Films 368:275–278
154.
Zurück zum Zitat Weiss F, Lindner J, Senateur JP, Dubourdieu C, Galindo V, Audier M, Abrutis A, Rosina M, Fröhlich K, Haessler W, Oswald S, Figueras A, Santiso J (2000) Injection MOCVD: ferroelectric thin films and functional oxide superlattices. Surf Coat Technol 133–134:191–197 Weiss F, Lindner J, Senateur JP, Dubourdieu C, Galindo V, Audier M, Abrutis A, Rosina M, Fröhlich K, Haessler W, Oswald S, Figueras A, Santiso J (2000) Injection MOCVD: ferroelectric thin films and functional oxide superlattices. Surf Coat Technol 133–134:191–197
155.
Zurück zum Zitat Singha MK, Yang Y, Takoudisa CG (2009) Synthesis of multifunctional multiferroic materials from metalorganics. Coord Chem Rev 253:2920–2934 Singha MK, Yang Y, Takoudisa CG (2009) Synthesis of multifunctional multiferroic materials from metalorganics. Coord Chem Rev 253:2920–2934
156.
Zurück zum Zitat Basceri C, Streiffer SK, Kingon AI, Waser R (1997) The dielectric response as a function of temperature and film thickness of fiber-textured (Ba, Sr)TiO3 thin films grown by chemical vapor deposition. J Appl Phys 82:2497–2504 Basceri C, Streiffer SK, Kingon AI, Waser R (1997) The dielectric response as a function of temperature and film thickness of fiber-textured (Ba, Sr)TiO3 thin films grown by chemical vapor deposition. J Appl Phys 82:2497–2504
157.
Zurück zum Zitat Kwak BS, Boyd EP, Erbil A (1988) Metalorganic chemical vapor deposition of PbTiO3 thin films. Appl Phys Lett 53:1702–1704 Kwak BS, Boyd EP, Erbil A (1988) Metalorganic chemical vapor deposition of PbTiO3 thin films. Appl Phys Lett 53:1702–1704
158.
Zurück zum Zitat Sakashita Y, Segawa H, Tominaga K, Okada M (1993) Dependence of electrical properties on film thickness in Pb(ZrxTi1−x)O3 thin films produced by metalorganic chemical vapor deposition. J Appl Phys 73:7857–7863 Sakashita Y, Segawa H, Tominaga K, Okada M (1993) Dependence of electrical properties on film thickness in Pb(ZrxTi1−x)O3 thin films produced by metalorganic chemical vapor deposition. J Appl Phys 73:7857–7863
159.
Zurück zum Zitat Yang SY, Zavaliche F, Mohaddes-Ardabili L, Vaithyanathan V, Schlom DG, Lee YJ, Chu YH, Cruz MP, Zhan Q, Zhao T, Ramesh R. Metalorganic chemical vapor deposition of lead-free ferroelectric BiFeO3 films for memory applications. Appl. Phys. Lett. 87 (2005) 102903(1–3) Yang SY, Zavaliche F, Mohaddes-Ardabili L, Vaithyanathan V, Schlom DG, Lee YJ, Chu YH, Cruz MP, Zhan Q, Zhao T, Ramesh R. Metalorganic chemical vapor deposition of lead-free ferroelectric BiFeO3 films for memory applications. Appl. Phys. Lett. 87 (2005) 102903(1–3)
160.
Zurück zum Zitat Weiss F, Audier M, Bartasyte A, Bellet D, Girardot C, Jimenez C, Kreisel J, Pignard S, Salaun M, Ternon C (2009) Multifunctional oxide nanostructures by metal-organic chemical vapor deposition (MOCVD). Pure Appl Chem 81(8):1523–1534 Weiss F, Audier M, Bartasyte A, Bellet D, Girardot C, Jimenez C, Kreisel J, Pignard S, Salaun M, Ternon C (2009) Multifunctional oxide nanostructures by metal-organic chemical vapor deposition (MOCVD). Pure Appl Chem 81(8):1523–1534
161.
Zurück zum Zitat Eckstein JN, Bozovic I (1995) High-temperature superconducting multilayers and heterostructures grown by atomic layer-by-layer molecular beam epitaxy. Annu Rev Mater Sci 25:679–709 Eckstein JN, Bozovic I (1995) High-temperature superconducting multilayers and heterostructures grown by atomic layer-by-layer molecular beam epitaxy. Annu Rev Mater Sci 25:679–709
162.
Zurück zum Zitat Brooks CM, Kourkoutis LF, Heeg T, Schubert J, Muller DA, Schlom DG (2009) Growth of homoepitaxial SrTiO3 thin films by molecular-beam epitaxy. Appl Phys Lett 94:162905(1–3) Brooks CM, Kourkoutis LF, Heeg T, Schubert J, Muller DA, Schlom DG (2009) Growth of homoepitaxial SrTiO3 thin films by molecular-beam epitaxy. Appl Phys Lett 94:162905(1–3)
163.
Zurück zum Zitat Lei Q, Golalikhani M, Davidson BA, Liu G, Schlom DG, Qiao Q, Zhu Y, Chandrasena RU, Yang W, Gray AX, Arenholz E, Farrar AK, Tenne DA, Hu M, Guo J, Singh RK, Xi X (2017) Constructing oxide interfaces and heterostructures by atomic layer-by-layer laser molecular beam epitaxy. NPJ Quant Mater 2:10(1–7) Lei Q, Golalikhani M, Davidson BA, Liu G, Schlom DG, Qiao Q, Zhu Y, Chandrasena RU, Yang W, Gray AX, Arenholz E, Farrar AK, Tenne DA, Hu M, Guo J, Singh RK, Xi X (2017) Constructing oxide interfaces and heterostructures by atomic layer-by-layer laser molecular beam epitaxy. NPJ Quant Mater 2:10(1–7)
164.
Zurück zum Zitat Alexe M, Harnagea C, Hesse D, Gösele U (1999) Patterning and switching of nanosize ferroelectric memory cells. Appl Phys Lett 75(12):1793–1795 Alexe M, Harnagea C, Hesse D, Gösele U (1999) Patterning and switching of nanosize ferroelectric memory cells. Appl Phys Lett 75(12):1793–1795
165.
Zurück zum Zitat Ahluwalia R, Ng N, Schilling A, McQuaid RG, Evans DM, Gregg JM, Srolovitz DJ, Scott JF (2013) Manipulating ferroelectric domains in nanostructures under electron beams. Phys Rev Lett 111(16):165702(1–5) Ahluwalia R, Ng N, Schilling A, McQuaid RG, Evans DM, Gregg JM, Srolovitz DJ, Scott JF (2013) Manipulating ferroelectric domains in nanostructures under electron beams. Phys Rev Lett 111(16):165702(1–5)
166.
Zurück zum Zitat Hulteen JC, Vanduyne RP (1995) Nanosphere lithography: nanoparticle arrays and surface clusters. J Vac Sci Technol A 13(3):1553–1558 Hulteen JC, Vanduyne RP (1995) Nanosphere lithography: nanoparticle arrays and surface clusters. J Vac Sci Technol A 13(3):1553–1558
167.
Zurück zum Zitat Lee W, Han H, Lotnyk A, Schubert MA, Senz S, Alexe M, Hesse D, Baik S, Gösele U (2008) Individually addressable epitaxial ferroelectric nanocapacitor arrays with near Tb inch−2 density. Nat Nanotechnol 3:402–407 Lee W, Han H, Lotnyk A, Schubert MA, Senz S, Alexe M, Hesse D, Baik S, Gösele U (2008) Individually addressable epitaxial ferroelectric nanocapacitor arrays with near Tb inch−2 density. Nat Nanotechnol 3:402–407
168.
Zurück zum Zitat Guo R, Guo Y, Duan H, Li H, Liu H (2017) Synthesis of orthorhombic perovskite-type ZnSnO3 single-crystal nanoplates and their application in energy harvesting. ACS Appl Mater Interfaces 9(9):8271–8279 Guo R, Guo Y, Duan H, Li H, Liu H (2017) Synthesis of orthorhombic perovskite-type ZnSnO3 single-crystal nanoplates and their application in energy harvesting. ACS Appl Mater Interfaces 9(9):8271–8279
169.
Zurück zum Zitat Arney D, Porter B, Greve B, Maggard PA (2008) New molten-salt synthesis and photocatalytic properties of La2Ti2O7 particles. J Photochem Photobiol, A 199:230–235 Arney D, Porter B, Greve B, Maggard PA (2008) New molten-salt synthesis and photocatalytic properties of La2Ti2O7 particles. J Photochem Photobiol, A 199:230–235
170.
Zurück zum Zitat Burns SR, Gregg JM, Nagarajan V (2016) Nanostructuring ferroelectrics via focused ion beam methodologies. Adv Funct Mater 26:8367–8381 Burns SR, Gregg JM, Nagarajan V (2016) Nanostructuring ferroelectrics via focused ion beam methodologies. Adv Funct Mater 26:8367–8381
171.
Zurück zum Zitat Rémiens D, Liang RH, Soyer C, Deresmes D, Troadec D, Quignon S, Da Costa A, Desfeux R (2010) Analysis of the degradation induced by focused ion Ga3+ beam for the realization of piezoelectric nanostructures. J Appl Phys 108:042008 Rémiens D, Liang RH, Soyer C, Deresmes D, Troadec D, Quignon S, Da Costa A, Desfeux R (2010) Analysis of the degradation induced by focused ion Ga3+ beam for the realization of piezoelectric nanostructures. J Appl Phys 108:042008
172.
Zurück zum Zitat Liu G-Y, Xu S, Qian Y (2000) Nanofabrication of self-assembled monolayers using scanning probe lithography. Acc Chem Res 339(7):457–466 Liu G-Y, Xu S, Qian Y (2000) Nanofabrication of self-assembled monolayers using scanning probe lithography. Acc Chem Res 339(7):457–466
173.
Zurück zum Zitat Piner RD, Zhu J, Xu F, Hong S, Mirkin CA (1999) Dip-pen nanolithography. Science 283:661–663 Piner RD, Zhu J, Xu F, Hong S, Mirkin CA (1999) Dip-pen nanolithography. Science 283:661–663
174.
Zurück zum Zitat Kushizaki T, Fujiwara K, Hattori AN, Kanki T, Tanaka H (2012) Controlled fabrication of artificial ferromagnetic (Fe,Mn)3O4 nanowall-wires by a three-dimensional nanotemplate pulsed laser deposition method. Nanotechnology 23(48):485308(1–5) Kushizaki T, Fujiwara K, Hattori AN, Kanki T, Tanaka H (2012) Controlled fabrication of artificial ferromagnetic (Fe,Mn)3O4 nanowall-wires by a three-dimensional nanotemplate pulsed laser deposition method. Nanotechnology 23(48):485308(1–5)
175.
Zurück zum Zitat Ji DX, Cai SH, Paudel TR, Sun HY, Zhang CC, Han L, Wei YF, Zang YP, Gu M, Zhang Y, Gao WP, Huyan HX, Guo W, Wu D, Gu ZB, Tsymbal EY, Wang P, Nie YF, Pan XQ (2019) Freestanding crystalline oxide perovskites down to the monolayer limit. Nature 570:87–90 Ji DX, Cai SH, Paudel TR, Sun HY, Zhang CC, Han L, Wei YF, Zang YP, Gu M, Zhang Y, Gao WP, Huyan HX, Guo W, Wu D, Gu ZB, Tsymbal EY, Wang P, Nie YF, Pan XQ (2019) Freestanding crystalline oxide perovskites down to the monolayer limit. Nature 570:87–90
Metadaten
Titel
Preparation Methods of Perovskite-Type Oxide Materials
verfasst von
Weiren Xia
Yao Lu
Xinhua Zhu
Copyright-Jahr
2020
Verlag
Springer Singapore
DOI
https://doi.org/10.1007/978-981-15-1267-4_3