Nanoengineering of photocatalytic electrode materials toward net zero emissions
暂无分享,去创建一个
Yonggang Jin | Y. Boyjoo | Jian Liu | Haitao Li | Haitao Li | Guangyu Zhao | Hua Guo | Guangyu Zhao | Jian Liu | Yash Boyjoo | Yonggang Jin | Hua Guo
[1] J. Schneider,et al. Spectroscopic and kinetic characterization of photogenerated charge carriers in photocatalysts , 2022, Photochemical & Photobiological Sciences.
[2] Ruotian Chen,et al. Unraveling charge separation mechanisms in photocatalyst particles by spatially resolved surface photovoltage , 2022, Angewandte Chemie.
[3] X. Tan,et al. Effect of S vacancy in Cu3SnS4 on high selectivity and activity of photocatalytic CO2 reduction , 2021 .
[4] Shelley D. Minteer,et al. Photo-bioelectrocatalytic CO2 reduction for a circular energy landscape , 2021, Joule.
[5] F. Zaera. In-situ and operando spectroscopies for the characterization of catalysts and of mechanisms of catalytic reactions , 2021, Journal of Catalysis.
[6] Yuxin Zhang,et al. Photoelectrocatalytic carbon dioxide reduction: Fundamental, advances and challenges , 2021 .
[7] Yi Li,et al. Electrocatalysis: Advanced Electrocatalysis for Energy and Environmental Sustainability via Water and Nitrogen Reactions (Adv. Mater. 6/2021) , 2021, Advanced Materials.
[8] B. Likozar,et al. Photocatalytic CO2 Reduction: A Review of Ab Initio Mechanism, Kinetics, and Multiscale Modeling Simulations , 2020, ACS Catalysis.
[9] D. Whang. Immobilization of molecular catalysts for artificial photosynthesis , 2020, Nano Convergence.
[10] S. He,et al. Construction of core-shell heterojunction regulating α-Fe2O3 layer on CeO2 nanotube arrays enables highly efficient Z-scheme photoelectrocatalysis , 2020 .
[11] Zhiqun Lin,et al. Anode Photovoltage Compensation‐Enabled Synergistic CO2 Photoelectrocatalytic Reduction on a Flower‐Like Graphene‐Decorated Cu Foam Cathode , 2020, Advanced Functional Materials.
[12] Yihe Zhang,et al. External fields enhanced photocatalysis. , 2020, Angewandte Chemie.
[13] R. Cao,et al. Advancing Applications of Black Phosphorus and BP‐Analog Materials in Photo/Electrocatalysis through Structure Engineering and Surface Modulation , 2020, Advanced science.
[14] A. Tukiainen,et al. Optimization of Photogenerated Charge Carrier Lifetimes in ALD Grown TiO2 for Photonic Applications , 2020, Nanomaterials.
[15] Xiujian Zhao,et al. Pb‐Based Halide Perovskites: Recent Advances in Photo(electro)catalytic Applications and Looking Beyond , 2020, Advanced Functional Materials.
[16] Junwang Tang,et al. Characterization of charge carrier behavior in photocatalysis using transient absorption spectroscopy. , 2020, The Journal of chemical physics.
[17] Yingnan Cao,et al. Photoanode driven photoelectrocatalytic system for CO2 reduction to formic acid by using CoOx cathode , 2020 .
[18] H. García,et al. Photocatalytic CO2 Reduction to C2+ Products , 2020, ACS Catalysis.
[19] Wilson A. Smith,et al. Facet-Dependent Selectivity of Cu Catalysts in Electrochemical CO2 Reduction at Commercially Viable Current Densities , 2020, ACS catalysis.
[20] Junfa Zhu,et al. Heterogeneous Single-Atom Photocatalysts: Fundamentals and Applications. , 2020, Chemical reviews.
[21] Jiazang Chen,et al. Photoelectrocatalytic CO2 reduction to ethanol via graphite-supported and functionalized TiO2 nanowires photocathode , 2020 .
[22] Zhichuan J. Xu,et al. Electrocatalysis: A Core Technique for a Sustainable Future. , 2020, Chemistry.
[23] Guoxiu Wang,et al. Application of Photocatalytic Materials in Sensors , 2020, Advanced Materials Technologies.
[24] Xue-qing Gong,et al. (Photo)Electrocatalytic CO2 Reduction at the Defective Anatase TiO2 (101) Surface , 2020, ACS Catalysis.
[25] Xuefeng Wei,et al. Photoelectrocatalytic Reduction of CO2 for Efficient Methanol Production: Au Nanoparticles as Electrocatalysts and Light Supports , 2020, Industrial & Engineering Chemistry Research.
[26] Yong Yang,et al. Correction: Understanding of binding energy calibration in XPS of lanthanum oxide by in situ treatment. , 2020, Physical chemistry chemical physics : PCCP.
[27] S. I. Cordoba de Torresi,et al. Relation between the nature of the surface facets and the reactivity of Cu2O nanostructures anchored on TiO2NT@PDA electrodes in the photoelectrocatalytic conversion of CO2 to methanol , 2020 .
[28] Z. Mi,et al. Highly efficient binary copper−iron catalyst for photoelectrochemical carbon dioxide reduction toward methane , 2020, Proceedings of the National Academy of Sciences.
[29] Junying Liu,et al. Defects Engineering in Photocatalytic Water Splitting Materials , 2019, ChemCatChem.
[30] Hui Ling Tan,et al. Photocatalytic and Photoelectrochemical Systems: Similarities and Differences , 2019, Advanced materials.
[31] Yajun Zhang,et al. Direct Observation of Oxygen Vacancy Self-Healing on TiO2 Photocatalysts for Solar Water Splitting. , 2019, Angewandte Chemie.
[32] Z. Mi,et al. A GaN:Sn nanoarchitecture integrated on a silicon platform for converting CO2 to HCOOH by photoelectrocatalysis , 2019, Energy & Environmental Science.
[33] Zhi-gang Chen,et al. Separable and recyclable meso-carbon@TiO2/carbon fiber composites for visible-light photocatalysis and photoelectrocatalysis , 2019, Sustainable Materials and Technologies.
[34] Dunwei Wang,et al. Catalysts in electro-, photo- and photoelectrocatalytic CO2 reduction reactions , 2019, Journal of Photochemistry and Photobiology C: Photochemistry Reviews.
[35] Peiqiang Li,et al. Interaction between InP and SnO2 on TiO2 nanotubes for photoelectrocatalytic reduction of CO2 , 2019, Colloids and Surfaces A: Physicochemical and Engineering Aspects.
[36] J. Nørskov,et al. Progress and Perspectives of Electrochemical CO2 Reduction on Copper in Aqueous Electrolyte. , 2019, Chemical reviews.
[37] Paul J. A. Kenis,et al. Co-electrolysis of CO2 and glycerol as a pathway to carbon chemicals with improved technoeconomics due to low electricity consumption , 2019, Nature Energy.
[38] M. Jaroniec,et al. Understanding the Roadmap for Electrochemical Reduction of CO2 to Multi-Carbon Oxygenates and Hydrocarbons on Copper-Based Catalysts. , 2019, Journal of the American Chemical Society.
[39] Weradesh Sangkhun,et al. New understanding of crystal control and facet selectivity of titanium dioxide ruling photocatalytic performance , 2019, Journal of Materials Chemistry A.
[40] Z. Mi,et al. Binary molecular-semiconductor p–n junctions for photoelectrocatalytic CO2 reduction , 2019, Nature Energy.
[41] Paolo Melchiorre,et al. Mechanistic Studies in Photocatalysis. , 2019, Angewandte Chemie.
[42] P. He,et al. Electrochemical CO2 Reduction Using Electrons Generated from Photoelectrocatalytic Phenol Oxidation , 2019, Advanced Energy Materials.
[43] Xiao-jie Li,et al. Zn phthalocyanine/carbon nitride heterojunction for visible light photoelectrocatalytic conversion of CO2 to methanol , 2019, Journal of Catalysis.
[44] G. Yasin,et al. Layered by layered Ni-Mn-LDH/g-C3N4 nanohybrid for multi-purpose photo/electrocatalysis: Morphology controlled strategy for effective charge carriers separation , 2019, Applied Catalysis B: Environmental.
[45] Audrey Moores,et al. Plasmonic nanoparticles: Photocatalysts with a bright future , 2019, Current Opinion in Green and Sustainable Chemistry.
[46] Zhong Lin Wang,et al. Piezoelectric‐Effect‐Enhanced Full‐Spectrum Photoelectrocatalysis in p–n Heterojunction , 2019, Advanced Functional Materials.
[47] Hui Liu,et al. Stable single-atom cobalt as a strong coupling bridge to promote electron transfer and separation in photoelectrocatalysis , 2019, Journal of Catalysis.
[48] Gengfeng Zheng,et al. Oxygen Vacancy Tuning toward Efficient Electrocatalytic CO 2 Reduction to C 2 H 4 , 2018, Small Methods.
[49] Gengfeng Zheng,et al. Defect and Interface Engineering for Aqueous Electrocatalytic CO2 Reduction , 2018, Joule.
[50] Wenting Sun,et al. Insight into the Transfer Mechanism of Photogenerated Carriers for WO3/TiO2 Heterojunction Photocatalysts: Is It the Transfer of Band–Band or Z-Scheme? Why? , 2018, The Journal of Physical Chemistry C.
[51] Zisheng Zhang,et al. Two dimensional graphitic materials for photoelectrocatalysis: A short review , 2018, Catalysis Today.
[52] Xiaodong Zhang,et al. Elemental doping for optimizing photocatalysis in semiconductors. , 2018, Dalton transactions.
[53] Xiuli Wang,et al. Roles of Phase Junction in Photocatalysis and Photoelectrocatalysis , 2018, The Journal of Physical Chemistry C.
[54] Jun Yang,et al. Highly efficient photoelectrocatalytic reduction of CO2 on the Ti3C2/g-C3N4 heterojunction with rich Ti3+ and pyri-N species , 2018 .
[55] Gengfeng Zheng,et al. Single-Atomic Cu with Multiple Oxygen Vacancies on Ceria for Electrocatalytic CO2 Reduction to CH4 , 2018, ACS Catalysis.
[56] Rui Li,et al. Enhanced photocatalytic activity of Se-doped TiO2 under visible light irradiation , 2018, Scientific Reports.
[57] Jiale Xie,et al. Self-Improvement of Ti:Fe2O3 Photoanodes: Photoelectrocatalysis Improvement after Long-Term Stability Testing in Alkaline Electrolyte , 2018 .
[58] Runwei Wang,et al. Well-controlled SrTiO3@Mo2C core-shell nanofiber photocatalyst: Boosted photo-generated charge carriers transportation and enhanced catalytic performance for water reduction , 2018 .
[59] Ravi Kumar,et al. Dominating role of crystal structure over defect chemistry in black and white zirconia on visible light photocatalytic activity , 2018, Scientific Reports.
[60] Wei Wen,et al. Titania nanowires functionalized polyester fabrics with enhanced photocatalytic and antibacterial performances. , 2018, Journal of hazardous materials.
[61] Ying-hua Liang,et al. Combination of photoelectrocatalysis and adsorption for removal of bisphenol A over TiO2-graphene hydrogel with 3D network structure , 2018 .
[62] Wenjun Zhang,et al. Progress and Perspective of Electrocatalytic CO2 Reduction for Renewable Carbonaceous Fuels and Chemicals , 2017, Advanced science.
[63] Z. Fan,et al. Application of carbon aerogel electrosorption for enhanced Bi2WO6 photoelectrocatalysis and elimination of trace nonylphenol , 2018 .
[64] Huimin Yang,et al. Constructing a novel GQDs/PANI/g-C3N4 ternary heterostructure with enhanced photoelectrocatalytic performance , 2017 .
[65] Jimmy C. Yu,et al. Effective Prevention of Charge Trapping in Graphitic Carbon Nitride with Nanosized Red Phosphorus Modification for Superior Photo(electro)catalysis , 2017 .
[66] Dunwei Wang,et al. Photocatalysis: Basic Principles, Diverse Forms of Implementations and Emerging Scientific Opportunities , 2017 .
[67] M. Jaroniec,et al. Molecular Scaffolding Strategy with Synergistic Active Centers To Facilitate Electrocatalytic CO2 Reduction to Hydrocarbon/Alcohol. , 2017, Journal of the American Chemical Society.
[68] W. Cui,et al. Atomically dispersed hybrid nickel-iridium sites for photoelectrocatalysis , 2017, Nature Communications.
[69] Ning Qin,et al. Facet exposure-dependent photoelectrocatalytic oxidation kinetics of bisphenol A on nanocrystalline {001} TiO2/carbon aerogel electrode , 2017 .
[70] Lei Zhang,et al. Energy related CO2 conversion and utilization: Advanced materials/nanomaterials, reaction mechanisms and technologies , 2017 .
[71] Jinlong Gong,et al. Nanostructured Materials for Heterogeneous Electrocatalytic CO2 Reduction and their Related Reaction Mechanisms. , 2017, Angewandte Chemie.
[72] A. Eftekhari. Molybdenum diselenide (MoSe2) for energy storage, catalysis, and optoelectronics , 2017 .
[73] Zachary D. Hood,et al. Introducing Ti3+ defects based on lattice distortion for enhanced visible light photoreactivity in TiO2 microspheres , 2017 .
[74] Yaomin Li,et al. Boric acid assisted synthesis of WO3 nanostructures with highly reactive (002) facet and enhanced photoelectrocatalytic activity , 2017, Journal of Materials Science: Materials in Electronics.
[75] Qiuye Li,et al. Synergistic effect of surface and bulk single-electron-trapped oxygen vacancy of TiO2 in the photocatalytic reduction of CO2 , 2017 .
[76] Sergi Garcia-Segura,et al. Applied photoelectrocatalysis on the degradation of organic pollutants in wastewaters , 2017 .
[77] N. Wu,et al. Effects of Defects on Photocatalytic Activity of Hydrogen-Treated Titanium Oxide Nanobelts , 2017 .
[78] Sung-Yoon Chung,et al. Nanoporous Au Thin Films on Si Photoelectrodes for Selective and Efficient Photoelectrochemical CO2 Reduction , 2017 .
[79] Qi Shen,et al. Biomimetic photoelectrocatalytic conversion of greenhouse gas carbon dioxide: Two-electron reduction for efficient formate production , 2017 .
[80] Jiaguo Yu,et al. Surface modification and enhanced photocatalytic CO2 reduction performance of TiO2: a review , 2017 .
[81] Colin F. Dickens,et al. Combining theory and experiment in electrocatalysis: Insights into materials design , 2017, Science.
[82] Ming-hui Li,et al. Pyrazinamide-induced hepatotoxicity and gender differences in rats as revealed by a 1H NMR based metabolomics approach. , 2017, Toxicology research.
[83] Can Li,et al. Photocatalytic Water Splitting on Semiconductor-Based Photocatalysts , 2017 .
[84] Mietek Jaroniec,et al. Heterojunction Photocatalysts , 2017, Advanced materials.
[85] Jiaguo Yu,et al. A new understanding of the photocatalytic mechanism of the direct Z-scheme g-C3N4/TiO2 heterostructure. , 2016, Physical chemistry chemical physics : PCCP.
[86] Xin Li,et al. Graphene in Photocatalysis: A Review. , 2016, Small.
[87] Jiaguo Yu,et al. Highly efficient TiO2 single-crystal photocatalyst with spatially separated Ag and F− bi-cocatalysts: orientation transfer of photogenerated charges and their rapid interfacial reaction , 2016 .
[88] R. Gómez,et al. Synthesis, characterization and photocatalytic activity of TiO2 nanostructures: Nanotubes, nanofibers, nanowires and nanoparticles , 2016 .
[89] Zhiming M. Wang,et al. Boosting Hot Electron-Driven Photocatalysis through Anisotropic Plasmonic Nanoparticles with Hot Spots in Au–TiO2 Nanoarchitectures , 2016 .
[90] Yunlin Liu,et al. Crystal Defect Engineering of Aurivillius Bi2MoO6 by Ce Doping for Increased Reactive Species Production in Photocatalysis , 2016 .
[91] Sibo Wang,et al. Imidazolium Ionic Liquids, Imidazolylidene Heterocyclic Carbenes, and Zeolitic Imidazolate Frameworks for CO2 Capture and Photochemical Reduction. , 2016, Angewandte Chemie.
[92] Hexing Li,et al. Nanotube-confinement induced size-controllable g-C3N4 quantum dots modified single-crystalline TiO2 nanotube arrays for stable synergetic photoelectrocatalysis , 2016 .
[93] Fenfen Liang,et al. Enhancement of mineralization ability for phenol via synergetic effect of photoelectrocatalysis of g-C3N4 film , 2016 .
[94] Md. Rakibul Hasan,et al. Charge transfer behavior of graphene-titania photoanode in CO2 photoelectrocatalysis process , 2015 .
[95] H. Onishi,et al. Electron–Hole Recombination Controlled by Metal Doping Sites in NaTaO3 Photocatalysts , 2015 .
[96] Tao Zhang,et al. What is the transfer mechanism of photogenerated carriers for the nanocomposite photocatalyst Ag3PO4/g-C3N4, band-band transfer or a direct Z-scheme? , 2015, Physical chemistry chemical physics : PCCP.
[97] Murray J Cairns,et al. Optimal consistency in microRNA expression analysis using reference-gene-based normalization. , 2015, Molecular bioSystems.
[98] Guohua Zhao,et al. High-Yield and Selective Photoelectrocatalytic Reduction of CO2 to Formate by Metallic Copper Decorated Co3O4 Nanotube Arrays. , 2015, Environmental science & technology.
[99] Zhengxiao Guo,et al. Visible-light driven heterojunction photocatalysts for water splitting – a critical review , 2015 .
[100] Chunming Wang,et al. A Novel MoSe2–Reduced Graphene Oxide/Polyimide Composite Film for Applications in Electrocatalysis and Photoelectrocatalysis Hydrogen Evolution , 2015 .
[101] Zhong Lin Wang,et al. Hierarchical TiO2 nanowire/graphite fiber photoelectrocatalysis setup powered by a wind-driven nanogenerator: A highly efficient photoelectrocatalytic device entirely based on renewable energy , 2015 .
[102] M. Khairy,et al. Effect of metal-doping of TiO2 nanoparticles on their photocatalytic activities toward removal of organic dyes , 2014 .
[103] Jianshe Liu,et al. Semiconductor heterojunction photocatalysts: design, construction, and photocatalytic performances. , 2014, Chemical Society reviews.
[104] Zhihong Wang,et al. Influence of Defects on the Photocatalytic Activity of ZnO , 2014 .
[105] Elena Selli,et al. Doping TiO2 with p-block elements: Effects on photocatalytic activity , 2013 .
[106] A. Asthagiri,et al. Selectivity of CO(2) reduction on copper electrodes: the role of the kinetics of elementary steps. , 2013, Angewandte Chemie.
[107] D. Bahnemann,et al. Kinetics and mechanisms of charge transfer processes in photocatalytic systems: A review , 2012 .
[108] W. Hou,et al. Fe and Ni co-doped TiO2 nanoparticles prepared by alcohol-thermal method: Application in hydrogen evolution by water splitting under visible light irradiation , 2012 .
[109] Peng Wang,et al. Plasmonic photocatalysts: harvesting visible light with noble metal nanoparticles. , 2012, Physical chemistry chemical physics : PCCP.
[110] Shuo Chen,et al. Integrating plasmonic nanoparticles with TiO₂ photonic crystal for enhancement of visible-light-driven photocatalysis. , 2012, Environmental science & technology.
[111] Xiao‐Yu Yang,et al. One-Dimensional Metal Oxide Nanotubes, Nanowires, Nanoribbons, and Nanorods: Synthesis, Characterizations, Properties and Applications , 2012 .
[112] P. Lianos,et al. Photocatalysis and photoelectrocatalysis using (CdS-ZnS)/TiO2 combined photocatalysts , 2011 .
[113] G. Lu,et al. Crystal facet engineering of semiconductor photocatalysts: motivations, advances and unique properties. , 2011, Chemical communications.
[114] J. Zou,et al. Anatase TiO₂ crystal facet growth: mechanistic role of hydrofluoric acid and photoelectrocatalytic activity. , 2011, ACS applied materials & interfaces.
[115] N. Umezawa,et al. Facet effect of single-crystalline Ag3PO4 sub-microcrystals on photocatalytic properties. , 2011, Journal of the American Chemical Society.
[116] A. Manivannan,et al. Shape-enhanced photocatalytic activity of single-crystalline anatase TiO(2) (101) nanobelts. , 2010, Journal of the American Chemical Society.
[117] Mikkel Jørgensen,et al. The teraton challenge. A review of fixation and transformation of carbon dioxide , 2010 .
[118] Yue Liu,et al. The fabrication and characterization of novel carbon doped TiO2 nanotubes, nanowires and nanorods with high visible light photocatalytic activity , 2009, Nanotechnology.
[119] Anna N. Ivanovskaya,et al. A Cu2O/TiO2 heterojunction thin film cathode for photoelectrocatalysis , 2003 .
[120] J. Herrmann,et al. Heterogeneous photocatalysis: fundamentals and applications to the removal of various types of aqueous pollutants , 1999 .
[121] A. Fujishima,et al. Electrochemical Photolysis of Water at a Semiconductor Electrode , 1972, Nature.
[122] I. S. Mclintock,et al. Reactions on titanium dioxide; photo-adsorption and oxidation of ethylene and propylene , 1965 .
[123] F. Mashio,et al. Titanium Dioxide-Photocatalyzed Liquid Phase Oxidation of Tetralin , 1964 .