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Erschienen in: Journal of Nanoparticle Research 9/2011

01.09.2011 | Research Paper

Nano-energy research trends: bibliometrical analysis of nanotechnology research in the energy sector

verfasst von: Ana Menéndez-Manjón, Kirsten Moldenhauer, Philipp Wagener, Stephan Barcikowski

Erschienen in: Journal of Nanoparticle Research | Ausgabe 9/2011

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Abstract

Nano-energy, the part of nanotechnology dedicated to the study and improvement of the Energy Supply Sector, is a promising and perspective research field. A robust method to quantify international scientific activities in this field is the literature search. An evaluative bibliometric approach applied to the Science Citation Index has been done to retrieve a set of articles related to nano-energy and get knowledge of the direction and trends followed by this particular scientific topic. The resulting database showed an exponential increase of the number of publications issuing nano-based investigations in the energy sector in the last decade, accelerating to an annual growth rate of 1,100%. The most cited articles and the material-clustering protocol revealed that carbon-nanoelements and their application in solar energy harvesting and conversion, and energy storage devices have been principally investigated and represent the main focus in that continuously growing research field. The number of nanotechnology-related papers in the energy database increased monotonically for harvesting, conversion, and storage the last decade, being energy distribution and usage not affected. TiO2 or SnO2 nanoparticles or thin films, and nanocomposites occupied the following top positions in the investigated material ranking. This trend was constant along the decade, as confirmed by network analyses. Supported by discipline-clustering, we observed the fundamental character of the research developed between 2000 and 2009, relying mainly on material science and chemistry. Hence, further implementation of nanotechnology findings is needed to stimulate nano-based energy-focused technologies reaching widespread commercial applications.

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Literatur
Zurück zum Zitat Aricò AS, Bruce P, Scrosati B, Tarascon JM, van Schalkwijk W (2005) Nanostructured materials for advanced energy conversion and storage devices. Nat Mater 4:366–377CrossRef Aricò AS, Bruce P, Scrosati B, Tarascon JM, van Schalkwijk W (2005) Nanostructured materials for advanced energy conversion and storage devices. Nat Mater 4:366–377CrossRef
Zurück zum Zitat Azens A, Granqvist C (2003) Electrochromic smart windows: energy efficiency and device aspects. J Solid State Electrochem 7:64–68 Azens A, Granqvist C (2003) Electrochromic smart windows: energy efficiency and device aspects. J Solid State Electrochem 7:64–68
Zurück zum Zitat Barcikowski S, Devesa F, Moldenhauer K (2009) Impact and structure of literature on nanoparticle generation by laser ablation in liquids. J Nanopart Res 11:1883–1893CrossRef Barcikowski S, Devesa F, Moldenhauer K (2009) Impact and structure of literature on nanoparticle generation by laser ablation in liquids. J Nanopart Res 11:1883–1893CrossRef
Zurück zum Zitat Baughman RH, Zakhidov AA, de Heer WA (2002) Carbon nanotubes—the route toward applications. Science 297:787–792CrossRef Baughman RH, Zakhidov AA, de Heer WA (2002) Carbon nanotubes—the route toward applications. Science 297:787–792CrossRef
Zurück zum Zitat Chan CK, Peng H, Liu G, McIlwrath K, Zhang XF, Huggins RA, Cui Y (2008) High-performance lithium battery anodes using silicon nanowires. Nat Nanotechnol 3:31–35CrossRef Chan CK, Peng H, Liu G, McIlwrath K, Zhang XF, Huggins RA, Cui Y (2008) High-performance lithium battery anodes using silicon nanowires. Nat Nanotechnol 3:31–35CrossRef
Zurück zum Zitat Cole JR, Halas NJ (2006) Optimized plasmonic nanoparticle distributions for solar spectrum harvesting. Appl Phys Lett 89:153120CrossRef Cole JR, Halas NJ (2006) Optimized plasmonic nanoparticle distributions for solar spectrum harvesting. Appl Phys Lett 89:153120CrossRef
Zurück zum Zitat de Nooy W, Mrvar A, Batagelj V (2005) Exploratory social network analysis with Pajek. Cambridge University Press, New York de Nooy W, Mrvar A, Batagelj V (2005) Exploratory social network analysis with Pajek. Cambridge University Press, New York
Zurück zum Zitat Dersch R, Steinhart M, Boudriot U, Greiner A, Wendorff JH (2005) Nanoprocessing of polymers: applications in medicine, sensors, catalysis, photonics. Polym Adv Technol 16:276–282CrossRef Dersch R, Steinhart M, Boudriot U, Greiner A, Wendorff JH (2005) Nanoprocessing of polymers: applications in medicine, sensors, catalysis, photonics. Polym Adv Technol 16:276–282CrossRef
Zurück zum Zitat Ferry VE, Sweatlock LA, Pacifici D, Atwater HA (2008) Plasmonic nanostructure design for efficient light coupling into solar cells. Nano Lett 8:4391–4397CrossRef Ferry VE, Sweatlock LA, Pacifici D, Atwater HA (2008) Plasmonic nanostructure design for efficient light coupling into solar cells. Nano Lett 8:4391–4397CrossRef
Zurück zum Zitat Frackowiak E, Beguin F (2001) Carbon materials for the electrochemical storage of energy in capacitors. Carbon 39:937–950CrossRef Frackowiak E, Beguin F (2001) Carbon materials for the electrochemical storage of energy in capacitors. Carbon 39:937–950CrossRef
Zurück zum Zitat Goesmann H, Feldmann C (2010) Nanopartikuläre Funktionsmaterialien. Angew Chem 122:1402–1437 Goesmann H, Feldmann C (2010) Nanopartikuläre Funktionsmaterialien. Angew Chem 122:1402–1437
Zurück zum Zitat Grätzel M (2005) Solar energy conversion by dye-sensitized photovoltaic cells. Inorg Chem 44:6841–6851CrossRef Grätzel M (2005) Solar energy conversion by dye-sensitized photovoltaic cells. Inorg Chem 44:6841–6851CrossRef
Zurück zum Zitat King RR, Law DC, Edmondson KM, Fetzer CM, Kinsey GS, Yoon H, Sherif RA, Karam NH (2007) 40% efficient metamorphic GaInP/GaInAs/Ge multijunction solar cells. Appl Phys Lett 90:183516CrossRef King RR, Law DC, Edmondson KM, Fetzer CM, Kinsey GS, Yoon H, Sherif RA, Karam NH (2007) 40% efficient metamorphic GaInP/GaInAs/Ge multijunction solar cells. Appl Phys Lett 90:183516CrossRef
Zurück zum Zitat Kostoff RN, Tshiteya R, Pfeil KM, Humenik JA, Karypis G (2005) Power source roadmaps using bibliometrics and database tomography. Energy 30:709–730CrossRef Kostoff RN, Tshiteya R, Pfeil KM, Humenik JA, Karypis G (2005) Power source roadmaps using bibliometrics and database tomography. Energy 30:709–730CrossRef
Zurück zum Zitat Kostoff RN, Stump JA, Johnson D, Murday JS, Lau CGY (2006) The structure and infrastructure of the global nanotechnology literature. J Nanopart Res 8:301–321CrossRef Kostoff RN, Stump JA, Johnson D, Murday JS, Lau CGY (2006) The structure and infrastructure of the global nanotechnology literature. J Nanopart Res 8:301–321CrossRef
Zurück zum Zitat Lee HC, Wu SC, Yang TC, Yen TJ (2010) Efficiently harvesting sun light for silicon solar cells through advanced optical couplers and a radial p-n junction structure. Energy 3:784–802CrossRef Lee HC, Wu SC, Yang TC, Yen TJ (2010) Efficiently harvesting sun light for silicon solar cells through advanced optical couplers and a radial p-n junction structure. Energy 3:784–802CrossRef
Zurück zum Zitat Lou XW, Wang Y, Yuan C, Chongli J, Lee Y, Archer LA (2006) Template-free synthesis of SnO2 hollow nanostructures with high lithium storage capacity. Adv Mater 18:2325–2329CrossRef Lou XW, Wang Y, Yuan C, Chongli J, Lee Y, Archer LA (2006) Template-free synthesis of SnO2 hollow nanostructures with high lithium storage capacity. Adv Mater 18:2325–2329CrossRef
Zurück zum Zitat Nazeeruddin MK, Pechy P, Renouard T, Zakeeruddin SM, Humphry-Baker R, Comte P, Liska P, Cevey L, Costa E, Shklover V, Spiccia L, Deacon GB, Bignozzi CA, Grätzel M (2001) Engineering of efficient panchromatic sensitizers for nanocrystalline TiO2-based solar cells. J Am Chem Soc 123:1613–1624CrossRef Nazeeruddin MK, Pechy P, Renouard T, Zakeeruddin SM, Humphry-Baker R, Comte P, Liska P, Cevey L, Costa E, Shklover V, Spiccia L, Deacon GB, Bignozzi CA, Grätzel M (2001) Engineering of efficient panchromatic sensitizers for nanocrystalline TiO2-based solar cells. J Am Chem Soc 123:1613–1624CrossRef
Zurück zum Zitat Porter AL, Youtie J (2009) Where does nanotechnology belong in the map of science? Nat Nano 4:534–536CrossRef Porter AL, Youtie J (2009) Where does nanotechnology belong in the map of science? Nat Nano 4:534–536CrossRef
Zurück zum Zitat Robel I, Subramanian V, Kuno M, Kamat PV (2006) Quantum dot solar cells. Harvesting light energy with CdSe nanocrystals molecularly linked to mesoscopic TiO2 films. J Am Chem Soc 128:2385–2393CrossRef Robel I, Subramanian V, Kuno M, Kamat PV (2006) Quantum dot solar cells. Harvesting light energy with CdSe nanocrystals molecularly linked to mesoscopic TiO2 films. J Am Chem Soc 128:2385–2393CrossRef
Zurück zum Zitat ISO/TS 27687: 2008(E) Nanotechnologies—terminology and definitions for nano-objects—nanoparticle, nanofibre and nanoplate ISO/TS 27687: 2008(E) Nanotechnologies—terminology and definitions for nano-objects—nanoparticle, nanofibre and nanoplate
Zurück zum Zitat Thompson BC, Frechet JMJ (2008) Organic photovoltaics—polymer–fullerene composite solar cells. Angew Chem 47:58–77CrossRef Thompson BC, Frechet JMJ (2008) Organic photovoltaics—polymer–fullerene composite solar cells. Angew Chem 47:58–77CrossRef
Zurück zum Zitat Wang ZS, Kawauchi H, Kashima T, Arakawa H (2004) Significant influence of TiO2 photoelectrode morphology on the energy conversion efficiency of N719 dye-sensitized solar cell. Coord Chem Rev 248:1381–1389CrossRef Wang ZS, Kawauchi H, Kashima T, Arakawa H (2004) Significant influence of TiO2 photoelectrode morphology on the energy conversion efficiency of N719 dye-sensitized solar cell. Coord Chem Rev 248:1381–1389CrossRef
Metadaten
Titel
Nano-energy research trends: bibliometrical analysis of nanotechnology research in the energy sector
verfasst von
Ana Menéndez-Manjón
Kirsten Moldenhauer
Philipp Wagener
Stephan Barcikowski
Publikationsdatum
01.09.2011
Verlag
Springer Netherlands
Erschienen in
Journal of Nanoparticle Research / Ausgabe 9/2011
Print ISSN: 1388-0764
Elektronische ISSN: 1572-896X
DOI
https://doi.org/10.1007/s11051-011-0344-9

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