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Published in: Journal of Sol-Gel Science and Technology 2/2019

05-06-2019 | Original Paper: Nano-structured materials (particles, fibers, colloids, composites, etc.)

Effect of the synthesis method and calcination temperature on the formation of Ni–NiO nanocomposites

Authors: R. B. da Silva, R. A. Pinto, J. M. Soares, A. Franco Jr., M. A. Correa, F. Bohn, J. A. P. da Costa

Published in: Journal of Sol-Gel Science and Technology | Issue 2/2019

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Abstract

We investigate the structural, morphological, chemical, and magnetic properties of Ni–NiO nanocomposites synthesized through two distinct routes, sol–gel and coprecipitation, followed by calcination. By considering several techniques we show that the resulting nanocomposites, as well as their properties, are strongly dependent on both, synthesis method and calcination temperature. Hence, we explore the possibility of tailoring the physical properties of the nanocomposite by modifying production parameters. The results place the employed routes as a simple, low-cost candidate to the production of Ni–NiO nanocomposites, especially nickel oxide.

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Literature
1.
go back to reference Meneses CT, Duque JGS, de Biasi E, Nunes WC, Sharma SK, Knobel M (2010) Competing interparticle interactions and surface anisotropy in NiO nanoparticles. J Appl Phys 108(1):013909CrossRef Meneses CT, Duque JGS, de Biasi E, Nunes WC, Sharma SK, Knobel M (2010) Competing interparticle interactions and surface anisotropy in NiO nanoparticles. J Appl Phys 108(1):013909CrossRef
2.
go back to reference De Biasi E, Ramos CA, Zysler RD, Romero H (2002) Large surface magnetic contribution in amorphous ferromagnetic nanoparticles. Phys Rev B 65(14):144416CrossRef De Biasi E, Ramos CA, Zysler RD, Romero H (2002) Large surface magnetic contribution in amorphous ferromagnetic nanoparticles. Phys Rev B 65(14):144416CrossRef
3.
go back to reference Kodama RH, Makhlouf SA, Berkowitz AE (1997) Finite size effects in antiferromagnetic NiO nanoparticles. Phys Rev Lett 79(7):1393–1396CrossRef Kodama RH, Makhlouf SA, Berkowitz AE (1997) Finite size effects in antiferromagnetic NiO nanoparticles. Phys Rev Lett 79(7):1393–1396CrossRef
4.
go back to reference Nogués J, Sort J, Langlais V, Skumryev V, Suriñach S, Muñoz JS, Baró MD (2005) Exchange bias in nanostructures. Phys Rep 422(3):65–117CrossRef Nogués J, Sort J, Langlais V, Skumryev V, Suriñach S, Muñoz JS, Baró MD (2005) Exchange bias in nanostructures. Phys Rep 422(3):65–117CrossRef
5.
go back to reference Roy A, De Toro JA, Amaral VS, Muniz P, Riveiro JM, Ferreira JMF (2014) Exchange bias beyond the superparamagnetic blocking temperature of the antiferromagnet in a Ni-NiO nanoparticulate system. J Appl Phys 115(7):073904CrossRef Roy A, De Toro JA, Amaral VS, Muniz P, Riveiro JM, Ferreira JMF (2014) Exchange bias beyond the superparamagnetic blocking temperature of the antiferromagnet in a Ni-NiO nanoparticulate system. J Appl Phys 115(7):073904CrossRef
6.
go back to reference Karthik K, Selvan GK, Kanagaraj M, Arumugam S, Jaya NV (2011) Particle size effect on the magnetic properties of NiO nanoparticles prepared by a precipitation method. J Alloy Compd 509(1):181–184CrossRef Karthik K, Selvan GK, Kanagaraj M, Arumugam S, Jaya NV (2011) Particle size effect on the magnetic properties of NiO nanoparticles prepared by a precipitation method. J Alloy Compd 509(1):181–184CrossRef
7.
go back to reference Gokul B, Saravanan P, Vinod V, Černík M, Sathyamoorthy R (2015) Synthesis of Ni/NiO nanocomposites by hydrothermal-assisted polyol process and their magnetic properties as a function of annealing temperature. Powder Technol 274:98–104CrossRef Gokul B, Saravanan P, Vinod V, Černík M, Sathyamoorthy R (2015) Synthesis of Ni/NiO nanocomposites by hydrothermal-assisted polyol process and their magnetic properties as a function of annealing temperature. Powder Technol 274:98–104CrossRef
8.
go back to reference Ganeshchandra Prabhu V, Shajira P, Lakshmi N, Junaid Bushiri M (2015) Magnetic properties of Ni/NiO nanocomposites synthesized by one step solution combustion method. J Phys Chem Solids 87:238–243CrossRef Ganeshchandra Prabhu V, Shajira P, Lakshmi N, Junaid Bushiri M (2015) Magnetic properties of Ni/NiO nanocomposites synthesized by one step solution combustion method. J Phys Chem Solids 87:238–243CrossRef
9.
go back to reference Anandha Babu G, Hayakawa Y, Ravi G (2015) Microwave synthesis and magnetic investigations of surfactant assisted NiO nanostructures. Mater Lett 149:54–57CrossRef Anandha Babu G, Hayakawa Y, Ravi G (2015) Microwave synthesis and magnetic investigations of surfactant assisted NiO nanostructures. Mater Lett 149:54–57CrossRef
10.
go back to reference Morozov Y, Ortega D, Belousova O, Parkin I, Kuznetsov M (2013) Some peculiarities in the magnetic behavior of aerosol generated NiO nanoparticles. J Alloy Compd 572:150–157CrossRef Morozov Y, Ortega D, Belousova O, Parkin I, Kuznetsov M (2013) Some peculiarities in the magnetic behavior of aerosol generated NiO nanoparticles. J Alloy Compd 572:150–157CrossRef
11.
go back to reference Silva RM, Raimundo RA, Fernandes WV, Torres SM, Silva VD, Grilo JP, Morales MA, Macedo DA (2018) Proteic sol–gel synthesis, structure and magnetic properties of Ni/NiO core–shell powders. Ceram Int 44(6):6152–6156CrossRef Silva RM, Raimundo RA, Fernandes WV, Torres SM, Silva VD, Grilo JP, Morales MA, Macedo DA (2018) Proteic sol–gel synthesis, structure and magnetic properties of Ni/NiO core–shell powders. Ceram Int 44(6):6152–6156CrossRef
12.
go back to reference Lutterotti L, Matthies S, Wenk HR (1999) MAUD (Matirial Analysis Using Diffraction) a user friendly Java program for Rietveld texture analysis and more. Proc Twelfth Int Conf Textures Mater 1:1599 Lutterotti L, Matthies S, Wenk HR (1999) MAUD (Matirial Analysis Using Diffraction) a user friendly Java program for Rietveld texture analysis and more. Proc Twelfth Int Conf Textures Mater 1:1599
13.
go back to reference Wenk H, Matthies S, Lutterotti L (1994) Texture analysis from diffraction spectra. Mater Sci Forum 157–162:473–480CrossRef Wenk H, Matthies S, Lutterotti L (1994) Texture analysis from diffraction spectra. Mater Sci Forum 157–162:473–480CrossRef
14.
go back to reference Thommes M, Kaneko K, Neimark AV, Olivier JP, Rodriguez-Reinoso F, Rouquerol J, Sing KS (2015) Physisorption of gases, with special reference to the evaluation of surface area and pore size distribution (IUPAC Technical Report). Pure Appl Chem 87(9–10):1051CrossRef Thommes M, Kaneko K, Neimark AV, Olivier JP, Rodriguez-Reinoso F, Rouquerol J, Sing KS (2015) Physisorption of gases, with special reference to the evaluation of surface area and pore size distribution (IUPAC Technical Report). Pure Appl Chem 87(9–10):1051CrossRef
15.
16.
go back to reference Sreethawong T, Chavadej S, Ngamsinlapasathian S, Yoshikawa S (2007) A modified sol–gel process-derived highly nanocrystalline mesoporous NiO with narrow pore size distribution. Colloids Surf A Physicochem Eng Asp 296(1–3):222–229CrossRef Sreethawong T, Chavadej S, Ngamsinlapasathian S, Yoshikawa S (2007) A modified sol–gel process-derived highly nanocrystalline mesoporous NiO with narrow pore size distribution. Colloids Surf A Physicochem Eng Asp 296(1–3):222–229CrossRef
17.
go back to reference Alagiri M, Ponnusamy S, Muthamizhchelvan C (2012) Synthesis and characterization of NiO nanoparticles by sol–gel method. J Mater Sci Mater Electron 23(3):728–732CrossRef Alagiri M, Ponnusamy S, Muthamizhchelvan C (2012) Synthesis and characterization of NiO nanoparticles by sol–gel method. J Mater Sci Mater Electron 23(3):728–732CrossRef
18.
go back to reference Feygenson M, Kou A, Kreno LE, Tiano AL, Patete JM, Zhang F, Kim MS, Solovyov V, Wong SS, Aronson MC (2010) Properties of highly crystalline NiO and Ni nanoparticles prepared by high-temperature oxidation and reduction. Phys Rev B 81(1):014420CrossRef Feygenson M, Kou A, Kreno LE, Tiano AL, Patete JM, Zhang F, Kim MS, Solovyov V, Wong SS, Aronson MC (2010) Properties of highly crystalline NiO and Ni nanoparticles prepared by high-temperature oxidation and reduction. Phys Rev B 81(1):014420CrossRef
19.
go back to reference Gokul B, Saravanan P, Vinod V, Černík M, Sathyamoorthy R (2019) Synergistic effect between ultra-small nickel hydroxide nanoparticles and reduced graphene oxide sheets for the application in high-performance asymmetric supercapacitor. Sci Rep 5:11095 Gokul B, Saravanan P, Vinod V, Černík M, Sathyamoorthy R (2019) Synergistic effect between ultra-small nickel hydroxide nanoparticles and reduced graphene oxide sheets for the application in high-performance asymmetric supercapacitor. Sci Rep 5:11095
20.
go back to reference Wu L, Wu Y, Wei H, Shi Y, Hu C (2004) Synthesis and characteristics of NiO nanowire by a solution method. Mater Lett 58(21):2700–2703CrossRef Wu L, Wu Y, Wei H, Shi Y, Hu C (2004) Synthesis and characteristics of NiO nanowire by a solution method. Mater Lett 58(21):2700–2703CrossRef
21.
go back to reference El-Kemary M, Nagy N, El-Mehasseb I (2013) Nickel oxide nanoparticles: synthesis and spectral studies of interactions with glucose. Mater Sci Semicond Process 16(6):1747–1752CrossRef El-Kemary M, Nagy N, El-Mehasseb I (2013) Nickel oxide nanoparticles: synthesis and spectral studies of interactions with glucose. Mater Sci Semicond Process 16(6):1747–1752CrossRef
22.
go back to reference Cullity BD (1972) Introduction to Magnetic Materials. Addison-Wesley, New York, NY Cullity BD (1972) Introduction to Magnetic Materials. Addison-Wesley, New York, NY
23.
go back to reference Proenca MP, Sousa CT, Pereira AM, Tavares PB, Ventura J, Vazquez M, Araujo JP (2011) Size and surface effects on the magnetic properties of NiO nanoparticles. Phys Chem Chem Phys 13(20):9561CrossRef Proenca MP, Sousa CT, Pereira AM, Tavares PB, Ventura J, Vazquez M, Araujo JP (2011) Size and surface effects on the magnetic properties of NiO nanoparticles. Phys Chem Chem Phys 13(20):9561CrossRef
Metadata
Title
Effect of the synthesis method and calcination temperature on the formation of Ni–NiO nanocomposites
Authors
R. B. da Silva
R. A. Pinto
J. M. Soares
A. Franco Jr.
M. A. Correa
F. Bohn
J. A. P. da Costa
Publication date
05-06-2019
Publisher
Springer US
Published in
Journal of Sol-Gel Science and Technology / Issue 2/2019
Print ISSN: 0928-0707
Electronic ISSN: 1573-4846
DOI
https://doi.org/10.1007/s10971-019-05038-8

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