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Y. Qu, Rui Cheng, Q. Su, X. Duan (2011)
Plasmonic enhancements of photocatalytic activity of Pt/n-Si/Ag photodiodes using Au/Ag core/shell nanorods.Journal of the American Chemical Society, 133 42
D. Milliron, Steven Hughes, Yi Cui, L. Manna, Jingbo Li, Lin-wang Wang, A. Alivisatos (2004)
Colloidal nanocrystal heterostructures with linear and branched topologyNature, 430
M. Tang, D. Grauer, B. Lassalle‐Kaiser, V. Yachandra, L. Amirav, J. Long, J. Yano, A. Alivisatos (2011)
Structural and electronic study of an amorphous MoS3 hydrogen-generation catalyst on a quantum-controlled photosensitizer.Angewandte Chemie, 50 43
M. Kelzenberg, D. Turner-Evans, B. Kayes, M. Filler, M. Putnam, N. Lewis, H. Atwater (2008)
Photovoltaic measurements in single-nanowire silicon solar cells.Nano letters, 8 2
Audrey Moores, F. Goettmann (2006)
The plasmon band in noble metal nanoparticles: an introduction to theory and applicationsNew Journal of Chemistry, 30
P. Kamat (2002)
Photophysical, photochemical and photocatalytic aspects of metal nanoparticlesJournal of Physical Chemistry B, 106
M. Law, Lori Greene, Justin Johnson, R. Saykally, P. Yang (2005)
Nanowire dye-sensitized solar cellsNature Materials, 4
J. Manassen, D. Cahen, G. Hodes, A. Sofer (1976)
Electrochemical, solid state, photochemical and technological aspects of photoelectrochemical energy convertersNature, 263
K. Maeda, M. Eguchi, W. Youngblood, T. Mallouk (2008)
Niobium Oxide Nanoscrolls as Building Blocks for Dye-Sensitized Hydrogen Production from Water under Visible Light IrradiationChemistry of Materials, 20
W. Ho, Jimmy Yu (2006)
Sonochemical synthesis and visible light photocatalytic behavior of CdSe and CdSe/TiO2 nanoparticlesJournal of Molecular Catalysis A-chemical, 247
T. Ohmori, H. Mametsuka, E. Suzuki (2000)
Photocatalytic hydrogen evolution on InP suspension with inorganic sacrificial reducing agentInternational Journal of Hydrogen Energy, 25
B. Hinnemann, P. Moses, J. Bonde, K. Jørgensen, J. Nielsen, S. Horch, I. Chorkendorff, J. Nørskov (2005)
Biomimetic hydrogen evolution: MoS2 nanoparticles as catalyst for hydrogen evolution.Journal of the American Chemical Society, 127 15
Ronny Costi, G. Cohen, Asaf Salant, E. Rabani, U. Banin (2009)
Electrostatic force microscopy study of single Au-CdSe hybrid nanodumbbells: evidence for light-induced charge separation.Nano letters, 9 5
T. Hirai, Y. Nomura, I. Komasawa (2003)
Immobilization of RuS2 Nanoparticles Prepared in Reverse Micellar System onto Thiol-Modified Polystyrene Particles and their Photocatalytic PropertiesJournal of Nanoparticle Research, 5
A. Fujishima, Xintong Zhang, D. Tryk (2008)
TiO2 photocatalysis and related surface phenomenaSurface Science Reports, 63
M. Razavet, V. Artero, M. Fontecave (2005)
Proton electroreduction catalyzed by cobaloximes: functional models for hydrogenases.Inorganic chemistry, 44 13
A. Schwartzberg, J. Zhang (2008)
Novel Optical Properties and Emerging Applications of Metal NanostructuresJournal of Physical Chemistry C, 112
N. Lewis (2007)
Toward Cost-Effective Solar Energy UseScience, 315
J. Holmes, K. Johnston, R. Doty, B. Korgel (2000)
Control of thickness and orientation of solution-grown silicon nanowiresScience, 287 5457
Javier Concepcion, J. Jurss, M. Brennaman, P. Hoertz, A. Patrocinio, N. Iha, J. Templeton, T. Meyer (2009)
Making oxygen with ruthenium complexes.Accounts of chemical research, 42 12
A. Fujishima, K. Honda (1972)
Electrochemical Photolysis of Water at a Semiconductor ElectrodeNature, 238
A. Goff, V. Artero, B. Jousselme, Phong Tran, N. Guillet, Romain Métayé, Aziz Fihri, S. Palacin, M. Fontecave (2009)
From Hydrogenases to Noble Metal–Free Catalytic Nanomaterials for H2 Production and UptakeScience, 326
Zhengrong Tian, J. Voigt, Jun Liu, B. McKenzie, Matthew McDermott, M. Rodriguez, H. Konishi, Huifang Xu (2003)
Complex and oriented ZnO nanostructuresNature Materials, 2
Peng Wang, Q. Dai, S. Zakeeruddin, M. Forsyth, D. Macfarlane, M. Grätzel (2004)
Ambient temperature plastic crystal electrolyte for efficient, all-solid-state dye-sensitized solar cell.Journal of the American Chemical Society, 126 42
O. Pantani, S. Naskar, R. Guillot, P. Millet, E. Anxolabéhère‐Mallart, A. Aukauloo (2008)
Cobalt clathrochelate complexes as hydrogen-producing catalysts.Angewandte Chemie, 47 51
M. Grätzel (2001)
Photoelectrochemical cellsNature, 414
C. Ellis, J. Gilbert, W. Murphy, T. Meyer (1983)
Electrocatalytic oxidation of chloride to chlorine based on polypyridine complexes of rutheniumJournal of the American Chemical Society, 105
Feng Chen, Zhigan Deng, Xiaopei Li, Jinlong Zhang, Jincai Zhao (2005)
Visible light detoxification by 2,9,16,23-tetracarboxyl phthalocyanine copper modified amorphous titaniaChemical Physics Letters, 415
H. Karunadasa, Christopher Chang, J. Long (2010)
A molecular molybdenum-oxo catalyst for generating hydrogen from waterNature, 464
M. Ni, M. Leung, D. Leung, K. Sumathy (2007)
A review and recent developments in photocatalytic water-splitting using TiO2 for hydrogen productionRenewable & Sustainable Energy Reviews, 11
B. Tian, T. Kempa, Charles Lieber (2009)
Single nanowire photovoltaics.Chemical Society reviews, 38 1
Bonamali Pal, T. Torimoto, K. Iwasaki, T. Shibayama, Heishichiro Takahashi, B. Ohtani (2004)
Size and Structure-Dependent Photocatalytic Activity of Jingle-Bell-Shaped Silica-Coated Cadmium Sulfide Nanoparticles for Methanol DehydrogenationJournal of Physical Chemistry B, 108
D. Duonghong, E. Borgarello, M. Graetzel (1981)
Dynamics of light-induced water cleavage in colloidal systemsJournal of the American Chemical Society, 103
D. Tryk, A. Fujishima, K. Honda (2000)
Recent topics in photoelectrochemistry: achievements and future prospectsElectrochimica Acta, 45
F. Patolsky, Gengfeng Zheng, Charles Lieber (2006)
Fabrication of silicon nanowire devices for ultrasensitive, label-free, real-time detection of biological and chemical speciesNature Protocols, 1
Ilan Gur, N. Fromer, Michael Geier, A. Alivisatos (2005)
Air-Stable All-Inorganic Nanocrystal Solar Cells Processed from SolutionScience, 310
Xile Hu, B. Cossairt, B. Brunschwig, N. Lewis, J. Peters (2005)
Electrocatalytic hydrogen evolution by cobalt difluoroboryl-diglyoximate complexes.Chemical communications, 37
V. Subramanian, E. Wolf, P. Kamat (2004)
Catalysis with TiO2/gold nanocomposites. Effect of metal particle size on the Fermi level equilibration.Journal of the American Chemical Society, 126 15
H. Kato, K. Asakura, A. Kudo (2003)
Highly efficient water splitting into H2 and O2 over lanthanum-doped NaTaO3 photocatalysts with high crystallinity and surface nanostructure.Journal of the American Chemical Society, 125 10
M. Schierhorn, S. Boettcher, S. Kraemer, G. Stucky, M. Moskovits (2009)
Photoelectrochemical performance of CdSe nanorod arrays grown on a transparent conducting substrate.Nano letters, 9 9
M. Nazeeruddin, F. Angelis, S. Fantacci, A. Selloni, G. Viscardi, P. Liska, S. Ito, B. Takeru, M. Grätzel (2005)
Combined experimental and DFT-TDDFT computational study of photoelectrochemical cell ruthenium sensitizers.Journal of the American Chemical Society, 127 48
Chun Hu, Jian Guo, J. Qu, Xue-xiang Hu (2007)
Photocatalytic degradation of pathogenic bacteria with AgI/TiO2 under visible light irradiation.Langmuir : the ACS journal of surfaces and colloids, 23 9
Zhenyi Zhang, C. Shao, Xinghua Li, Changhua Wang, Mingyi Zhang, Yichun Liu (2010)
Electrospun nanofibers of p-type NiO/n-type ZnO heterojunctions with enhanced photocatalytic activity.ACS applied materials & interfaces, 2 10
S. Sakthivel, B. Neppolian, M. Shankar, B. Arabindoo, M. Palanichamy, V. Murugesan (2003)
Solar photocatalytic degradation of azo dye: comparison of photocatalytic efficiency of ZnO and TiO2Solar Energy Materials and Solar Cells, 77
Y. Hou, B. Abrams, P. Vesborg, M. Björketun, K. Herbst, L. Bech, Alessandro Setti, C. Damsgaard, T. Pedersen, O. Hansen, J. Rossmeisl, S. Dahl, J. Nørskov, I. Chorkendorff (2011)
Bioinspired molecular co-catalysts bonded to a silicon photocathode for solar hydrogen evolution.Nature materials, 10 6
K. Sayama, H. Arakawa (1993)
Photocatalytic decomposition of water and photocatalytic reduction of carbon dioxide over zirconia catalystThe Journal of Physical Chemistry, 97
Jinfeng Wang, T. Tsuzuki, Lu Sun, Xungai Wang (2010)
Reverse microemulsion-mediated synthesis of SiO(2)-coated ZnO composite nanoparticles: multiple cores with tunable shell thickness.ACS applied materials & interfaces, 2 4
T. Ishihara, H. Nishiguchi, Keiko Fukamachi, Y. Takita (1999)
Effects of Acceptor Doping to KTaO3 on Photocatalytic Decomposition of Pure H2OJournal of Physical Chemistry B, 103
Xiaobo Chen, Lei Liu, P. Yu, S. Mao (2011)
Increasing Solar Absorption for Photocatalysis with Black Hydrogenated Titanium Dioxide NanocrystalsScience, 331
Yuanzhi Li, Hua Zhang, Zhiming Guo, Jianjun Han, Xiujian Zhao, Qing-nan Zhao, Sun-Jae Kim (2008)
Highly efficient visible-light-induced photocatalytic activity of nanostructured AgI/TiO2 photocatalyst.Langmuir : the ACS journal of surfaces and colloids, 24 15
Gongming Wang, Hanyu Wang, Yichuan Ling, Yuechao Tang, Xunyu Yang, R. Fitzmorris, Changchun Wang, J. Zhang, Yat Li (2011)
Hydrogen-treated TiO2 nanowire arrays for photoelectrochemical water splitting.Nano letters, 11 7
K. Maeda, K. Domen (2010)
Photocatalytic Water Splitting: Recent Progress and Future ChallengesJournal of Physical Chemistry Letters, 1
B. Fisher, R. Eisenberg (1980)
Electrocatalytic reduction of carbon dioxide by using macrocycles of nickel and cobaltJournal of the American Chemical Society, 102
Julian Bigi, Tamara Hanna, W. Harman, Alicia Chang, Christopher Chang (2010)
Electrocatalytic reduction of protons to hydrogen by a water-compatible cobalt polypyridyl platform.Chemical communications, 46 6
Anusorn Kongkanand, K. Tvrdy, K. Takechi, M. Kuno, P. Kamat (2008)
Quantum dot solar cells. Tuning photoresponse through size and shape control of CdSe-TiO2 architecture.Journal of the American Chemical Society, 130 12
J. Nedeljković, O. Mićić, S. Ahrenkiel, A. Miedaner, A. Nozik (2004)
Growth of InP nanostructures via reaction of indium droplets with phosphide ions: synthesis of InP quantum rods and InP-TiO2 composites.Journal of the American Chemical Society, 126 8
H. Tada, T. Mitsui, T. Kiyonaga, T. Akita, Koji Tanaka (2006)
All-solid-state Z-scheme in CdS–Au–TiO2 three-component nanojunction systemNature Materials, 5
Y. Qu, L. Liao, Yujing Li, Hua Zhang, Yu Huang, X. Duan (2009)
Electrically conductive and optically active porous silicon nanowires.Nano letters, 9 12
R. Brahimi, Y. Bessekhouad, A. Bouguelia, M. Trari (2008)
Improvement of eosin visible light degradation using PbS-sensititized TiO2Journal of Photochemistry and Photobiology A-chemistry, 194
K. Maeda, Anke Xiong, Taizo Yoshinaga, Takahiro Ikeda, Naoyuki Sakamoto, T. Hisatomi, Masaki Takashima, D. Lu, M. Kanehara, T. Setoyama, T. Teranishi, K. Domen (2010)
Photocatalytic overall water splitting promoted by two different cocatalysts for hydrogen and oxygen evolution under visible light.Angewandte Chemie, 49 24
A. Boudjemaa, R. Bouarab, S. Saadi, A. Bouguelia, M. Trari (2009)
Photoelectrochemical H2-generation over Spinel FeCr2O4 in X2- solutions (X2-Â =Â S2- and )Applied Energy, 86
P. Kamat, K. Tvrdy, D. Baker, James Radich (2010)
Beyond photovoltaics: semiconductor nanoarchitectures for liquid-junction solar cells.Chemical reviews, 110 11
G. Dukovic, Maxwell Merkle, James Nelson, Steven Hughes, A. Alivisatos (2008)
Photodeposition of Pt on Colloidal CdS and CdSe/CdS Semiconductor NanostructuresAdvanced Materials, 20
Y. Qu, Teng Xue, Xing Zhong, Yung-chen Lin, L. Liao, Jin-Ri Choi, X. Duan (2010)
Heterointegration of Pt/Si/Ag Nanowire Photodiodes and Their Photocatalytic PropertiesAdvanced Functional Materials, 20
K. Morton, Gregory Nieberg, S. Bai, S. Chou (2008)
Wafer-scale patterning of sub-40 nm diameter and high aspect ratio (>50:1) silicon pillar arrays by nanoimprint and etchingNanotechnology, 19
K. Maeda, T. Takata, M. Hara, N. Saito, Y. Inoue, Hisayoshi Kobayashi, K. Domen (2005)
GaN:ZnO solid solution as a photocatalyst for visible-light-driven overall water splitting.Journal of the American Chemical Society, 127 23
Mutong Niu, F. Huang, Lifeng Cui, Ping Huang, Yun-long Yu, Yuansheng Wang (2010)
Hydrothermal synthesis, structural characteristics, and enhanced photocatalysis of SnO(2)/alpha-Fe(2)O(3) semiconductor nanoheterostructures.ACS nano, 4 2
Xu Zong, Hongjian Yan, Guopeng Wu, Guijun Ma, Fuyu Wen, Lu Wang, Can Li (2008)
Enhancement of photocatalytic H2 evolution on CdS by loading MoS2 as Cocatalyst under visible light irradiation.Journal of the American Chemical Society, 130 23
Jinlong Zhang, Yongmei Wu, M. Xing, S. Leghari, S. Sajjad (2010)
Development of modified N doped TiO2 photocatalyst with metals, nonmetals and metal oxidesEnergy and Environmental Science, 3
Sonalika Vaidya, A. Patra, A. Ganguli (2010)
CdS@TiO2 and ZnS@TiO2 core–shell nanocomposites: Synthesis and optical propertiesColloids and Surfaces A: Physicochemical and Engineering Aspects, 363
N. Robertson (2008)
Catching the rainbow: light harvesting in dye-sensitized solar cells.Angewandte Chemie, 47 6
Matthew Kanan, D. Nocera (2008)
In Situ Formation of an Oxygen-Evolving Catalyst in Neutral Water Containing Phosphate and Co2+Science, 321
Shaohua Shen, Liejin Guo (2008)
Growth of quantum-confined CdS nanoparticles inside Ti-MCM-41 as a visible light photocatalystMaterials Research Bulletin, 43
Kuiqing Peng, Yunjie Yan, Shan Gao, Jing Zhu (2003)
Dendrite‐Assisted Growth of Silicon Nanowires in Electroless Metal DepositionAdvanced Functional Materials, 13
B. O'Regan, M. Grätzel (1991)
A low-cost, high-efficiency solar cell based on dye-sensitized colloidal TiO2 filmsNature, 353
Yue Li, T. Sasaki, Y. Shimizu, N. Koshizaki (2008)
Hexagonal-close-packed, hierarchical amorphous TiO2 nanocolumn arrays: transferability, enhanced photocatalytic activity, and superamphiphilicity without UV irradiation.Journal of the American Chemical Society, 130 44
Z. Zou, Jinhua Ye, K. Sayama, H. Arakawa (2001)
Direct splitting of water under visible light irradiation with an oxide semiconductor photocatalystNature, 414
Chen Yang, C. Barrelet, F. Capasso, Charles Lieber (2006)
Single p-type/intrinsic/n-type silicon nanowires as nanoscale avalanche photodetectors.Nano letters, 6 12
Z. Kang, Yang Liu, C. Tsang, D. Ma, Xia Fan, N. Wong, Shuitong Lee (2009)
Water‐Soluble Silicon Quantum Dots with Wavelength‐Tunable PhotoluminescenceAdvanced Materials, 21
Y. Qu, L. Liao, Rui Cheng, Yue Wang, Yung-chen Lin, Yu Huang, X. Duan (2010)
Rational design and synthesis of freestanding photoelectric nanodevices as highly efficient photocatalysts.Nano letters, 10 5
David Pena, J. Mbindyo, Anthony Carado, T. Mallouk, C. Keating, and Razavi, T. Mayer (2002)
Template Growth of Photoconductive Metal−CdSe−Metal NanowiresJournal of Physical Chemistry B, 106
A. Nozik (1978)
Photoelectrochemistry: Applications to Solar Energy ConversionAnnual Review of Physical Chemistry, 29
G. Dismukes, R. Brimblecombe, R. Brimblecombe, Greg Felton, Ruslan Pryadun, J. Sheats, L. Spiccia, G. Swiegers (2009)
Development of bioinspired Mn4O4-cubane water oxidation catalysts: lessons from photosynthesis.Accounts of chemical research, 42 12
A. Korzhak, N. Ermokhina, A. Stroyuk, V. Bukhtiyarov, A. Raevskaya, V. Litvin, S. Kuchmiy, V. Ilyin, Piotr Manorik (2008)
Photocatalytic hydrogen evolution over mesoporous TiO2/metal nanocompositesJournal of Photochemistry and Photobiology A-chemistry, 198
M. Walter, E. Warren, James McKone, S. Boettcher, Q. Mi, Elizabeth Santori, N. Lewis (2010)
Solar water splitting cells.Chemical reviews, 110 11
Somnath Roy, O. Varghese, M. Paulose, C. Grimes (2010)
Toward solar fuels: photocatalytic conversion of carbon dioxide to hydrocarbons.ACS nano, 4 3
X. Lou, L. Archer, Zichao Yang (2008)
Hollow Micro‐/Nanostructures: Synthesis and ApplicationsAdvanced Materials, 20
A. Kudo, Y. Miseki (2009)
Heterogeneous photocatalyst materials for water splitting.Chemical Society reviews, 38 1
Mohamed Elmoula, E. Panaitescu, M. Phan, David Yin, C. Richter, L. Lewis, L. Menon (2009)
Controlled attachment of gold nanoparticles on ordered titania nanotube arraysJournal of Materials Chemistry, 19
Zhijun Ning, H. Tian, C. Yuan, Ying Fu, Haiyan Qin, Licheng Sun, H. Ågren (2011)
Solar cells sensitized with type-II ZnSe-CdS core/shell colloidal quantum dots.Chemical communications, 47 5
Di Li, H. Haneda, N. Labhsetwar, S. Hishita, N. Ohashi (2005)
Visible-light-driven photocatalysis on fluorine-doped TiO2 powders by the creation of surface oxygen vacanciesChemical Physics Letters, 401
K. Maeda, K. Teramura, D. Lu, T. Takata, N. Saito, Y. Inoue, K. Domen (2006)
Photocatalyst releasing hydrogen from waterNature, 440
O. Hayden, R. Agarwal, Charles Lieber (2006)
Nanoscale avalanche photodiodes for highly sensitive and spatially resolved photon detectionNature Materials, 5
N. Bao, Liming Shen, T. Takata, K. Domen (2008)
Self-Templated Synthesis of Nanoporous CdS Nanostructures for Highly Efficient Photocatalytic Hydrogen Production under Visible LightChemistry of Materials, 20
A. Linsebigler, G. Lu, J. Yates (1995)
Photocatalysis on TiO2 Surfaces: Principles, Mechanisms, and Selected ResultsChemical Reviews, 95
M. Grätzel (2005)
Mesoscopic solar cells for electricity and hydrogen production from sunlightChemistry Letters, 34
Tieping Cao, Yuejun Li, Changhua Wang, Liming Wei, C. Shao, Yichun Liu (2010)
Fabrication, structure, and enhanced photocatalytic properties of hierarchical CeO2 nanostructures/TiO2 nanofibers heterostructuresMaterials Research Bulletin, 45
A. Luque, A. Martí, A. Nozik (2007)
Solar Cells Based on Quantum Dots: Multiple Exciton Generation and Intermediate BandsMRS Bulletin, 32
Hongjian Yan, Jinhui Yang, Guijun Ma, Guopeng Wu, Xu Zong, Zhibin Lei, Jingying Shi, Can Li (2009)
Visible-light-driven hydrogen production with extremely high quantum efficiency on Pt-PdS/CdS photocatalystJournal of Catalysis, 266
G. Menagen, J. Macdonald, Yossi Shemesh, I. Popov, U. Banin (2009)
Au growth on semiconductor nanorods: photoinduced versus thermal growth mechanisms.Journal of the American Chemical Society, 131 47
S. Ardo, G. Meyer (2009)
Photodriven heterogeneous charge transfer with transition-metal compounds anchored to TiO2 semiconductor surfaces.Chemical Society reviews, 38 1
L. Amirav, A. Alivisatos (2010)
Photocatalytic Hydrogen Production with Tunable Nanorod HeterostructuresJournal of Physical Chemistry Letters, 1
A. Bard, M. Fox (1995)
Artificial Photosynthesis: Solar Splitting of Water to Hydrogen and OxygenAccounts of Chemical Research, 28
X. D. Wang, C. Summers, Z. L. Wang (2004)
Mesoporous Single‐Crystal ZnO Nanowires Epitaxially Sheathed with Zn2SiO4Advanced Materials, 16
Timothy Cook, Dilek Dogutan, Steven Reece, Y. Surendranath, Thomas Teets, D. Nocera (2010)
Solar energy supply and storage for the legacy and nonlegacy worlds.Chemical reviews, 110 11
C. Ratanatawanate, Yuan Tao, K. Balkus (2009)
Photocatalytic Activity of PbS Quantum Dot/TiO2 Nanotube CompositesJournal of Physical Chemistry C, 113
Subarna Banerjee, S. Mohapatra, Prajna Das, M. Misra (2008)
Synthesis of Coupled Semiconductor by Filling 1D TiO2 Nanotubes with CdSChemistry of Materials, 20
D. Wodka, E. Bielanska, R. Socha, M. Elżbieciak-Wodka, J. Gurgul, P. Nowak, P. Warszyński, I. Kumakiri (2010)
Photocatalytic activity of titanium dioxide modified by silver nanoparticles.ACS applied materials & interfaces, 2 7
F. Jiao, H. Frei (2010)
Nanostructured cobalt and manganese oxide clusters as efficient water oxidation catalystsEnergy and Environmental Science, 3
D. Gust, T. Moore, A. Moore (2009)
Solar fuels via artificial photosynthesis.Accounts of chemical research, 42 12
C. Gueymard (2004)
The sun's total and spectral irradiance for solar energy applications and solar radiation modelsSolar Energy, 76
L. Manna, Erik Scher, Liang-Shi Li, A. Alivisatos (2002)
Epitaxial growth and photochemical annealing of graded CdS/ZnS shells on colloidal CdSe nanorods.Journal of the American Chemical Society, 124 24
Jin-Ri Choi, Hyunwoong Park, M. Hoffmann (2010)
Effects of Single Metal-Ion Doping on the Visible-Light Photoreactivity of TiO2Journal of Physical Chemistry C, 114
The search for clean renewable energy sources is of central importance to address the ever-increasing challenges of diminishing fossil fuels and global warming. Photocatalytic processes can mimic natural photosynthesis to directly convert solar energy into chemical energy, and represent an attractive strategy for renewable energy generation and environmental remediation. Nanostructured semiconductors can play an important role in photocatalysis due to their unique structures, and chemical and physical properties. Here we present a brief overview of the recent progress in the development of semiconductor nanostructure based photocatalysts. In particular, we focus our discussions on four essential problems that dictate the performance of a photocatalyst material: visible light absorption for efficient solar energy harvesting, efficient charge separation and transportation, effective cocatalysts for efficient charge utilization, and photoelectrochemical stability for robust photocatalysis. Challenges, potential solutions, and recent efforts to address each one of these problems are discussed. Lastly, we finish the perspective with the discussion of a recent concept of using freestanding photoelectrochemical nanodevices as a potential solution to a new generation of highly efficient and stable photocatalysts.
Energy & Environmental Science – Royal Society of Chemistry
Published: Apr 26, 2012
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