Highly selective and efficient photocatalytic NO removal: Charge carrier kinetics and interface molecular process
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Dieqing Zhang | Shuning Xiao | Shuangjun Li | Huan Shang | Hongbao Jia | Pengpeng Li | Hao Li | Wenbin Zhang | Qing Wang | Ding Wang | Guisheng Li
[1] Dingsheng Wang,et al. Synergy of Single Atoms and Lewis Acid Sites for Efficient and Selective Lignin Disassembly into Monolignol Derivatives. , 2023, Journal of the American Chemical Society.
[2] Dingsheng Wang,et al. Atomically dispersed materials: Ideal catalysts in atomic era , 2023, Nano Research.
[3] Dingsheng Wang,et al. Construction of Co4 Atomic Clusters to Enable Fe-N4 Motifs with Highly Active and Durable Oxygen Reduction Performance. , 2023, Angewandte Chemie.
[4] Hongbao Jia,et al. Hydroxyl Radical-Mediated Efficient Photoelectrocatalytic NO Oxidation with Simultaneous Nitrate Storage Using A Flow Photoanode Reactor. , 2023, Angewandte Chemie.
[5] Dingsheng Wang,et al. Co0-Coδ+ Interface Double-Site-Mediated C-C Coupling for the Photothermal Conversion of CO2 into Light Olefins. , 2023, Angewandte Chemie.
[6] Yadong Li,et al. Dual-Atom Support Boosts Nickel-Catalyzed Urea Electrooxidation. , 2023, Angewandte Chemie.
[7] W. Ho,et al. Polymeric carbon nitride-based photocatalysts for the removal of nitrogen oxides: a review , 2023, Environmental Chemistry Letters.
[8] C. V. Singh,et al. Hexagonal Cobalt Nanosheets for High-Performance Electrocatalytic NO Reduction to NH3. , 2023, Journal of the American Chemical Society.
[9] Dingsheng Wang,et al. Atomic-Level Regulation of Cobalt Single-Atom Nanozymes: Engineering High-Efficiency Catalase Mimics. , 2023, Angewandte Chemie.
[10] Tong Wu,et al. Recent Progress of Single-Atom Photocatalysts Applied in Energy Conversion and Environmental Protection. , 2023, Small.
[11] Y. Lei,et al. Synergistic Fe-Se Atom Pairs as Bifunctional Oxygen Electrocatalysts Boost Low-Temperature Rechargeable Zn-Air Battery. , 2023, Angewandte Chemie.
[12] G. Wang,et al. Engineering a Copper Single-Atom Electron Bridge to Achieve Efficient Photocatalytic CO2 Conversion. , 2023, Angewandte Chemie.
[13] Yingtang Zhou,et al. Insights into the Role of C-S-C Bond in C3N5 for Photocatalytic NO Deep Oxidation: Experimental and DFT Exploration , 2023, Applied Catalysis B: Environmental.
[14] Yuehan Cao,et al. Single-atom dispersed Zn-N3 active sites bridging the interlayer of g-C3N4 to tune NO oxidation pathway for the inhibition of toxic by-product generation , 2023, Chemical Engineering Journal.
[15] G. Zhu,et al. Au Nanoparticles Modified Oxygen-vacancies-rich Bi4Ti3O12 Heterojunction for Efficient Photocatalytic NO Removal with High Selectivity , 2023, Journal of Alloys and Compounds.
[16] Dingsheng Wang,et al. Liquid Fluxional Ga Single Atom Catalysts for Efficient Electrochemical CO2 Reduction. , 2022, Angewandte Chemie.
[17] Zhenzhen Lu,et al. K–Ca Synergetic Modified g-C3N4 for Efficient Photocatalytic NO Removal with Low-NO2-Emission , 2022, Catalysis Letters.
[18] Dingsheng Wang,et al. Long-Range Interaction on Diatomic Catalysts Boosting Electrocatalysis. , 2022, Angewandte Chemie.
[19] Zhihui Ai,et al. Surface Boronizing Can Weaken the Excitonic Effects of BiOBr Nanosheets for Efficient O2 Activation and Selective NO Oxidation under Visible Light Irradiation. , 2022, Environmental science & technology.
[20] Zhong-zhu Yang,et al. Typical layered structure bismuth-based photocatalysts for photocatalytic nitrogen oxides oxidation. , 2022, The Science of the total environment.
[21] Yadong Li,et al. A Single-Atom Cobalt Catalyst for the Fluorination of Acyl Chlorides at Parts-per-Million Catalyst Loading. , 2022, Angewandte Chemie.
[22] Hesheng Yu,et al. Single Pd atoms anchored graphitic carbon nitride for highly selective and stable photocatalysis of nitric oxide , 2022, Carbon.
[23] Dingsheng Wang,et al. Emerging low-nuclearity supported metal catalysts with atomic level precision for efficient heterogeneous catalysis , 2022, Nano Research.
[24] Dingsheng Wang,et al. Regulations of active moiety in single atom catalysts for electrochemical hydrogen evolution reaction , 2022, Nano Research.
[25] C. Ni,et al. Crystal-facet and microstructure engineering in ZnO for photocatalytic NO oxidation. , 2022, Journal of hazardous materials.
[26] Yu Huang,et al. Oxygen vacancy engineering of photocatalytic nanomaterials for enrichment, activation, and efficient removal of nitrogen oxides with high selectivity: a review , 2022, Environmental Chemistry Letters.
[27] Dingsheng Wang,et al. Electronically Engineering Water Resistance in Methane Combustion with an Atomically Dispersed Tungsten on PdO Catalyst. , 2022, Angewandte Chemie.
[28] Zhong Ma,et al. Singlet Oxygen and Mobile Hydroxyl Radicals Co-operating on Gas-Solid Catalytic Reaction Interfaces for Deeply Oxidizing NOx. , 2022, Environmental science & technology.
[29] Jianjun Li,et al. Design and mechanism of photocatalytic oxidation for the removal of air pollutants: a review , 2022, Environmental Chemistry Letters.
[30] Kaitian Zheng,et al. A supramolecule-based shape-controllable preparation of carbon nitride nanotubes for the visible light driven photodegradation , 2022, Surfaces and Interfaces.
[31] Zhen Chen,et al. Efficient Electron Transfer by Plasmonic Silver in SrTiO3 for Low-Concentration Photocatalytic NO Oxidation. , 2022, Environmental science & technology.
[32] Xuping Sun. Amorphous Boron Carbide on Titanium Dioxide Nanobelt Arrays for High-Efficiency Electrocatalytic NO Reduction to NH3. , 2022, Angewandte Chemie.
[33] Yadong Li,et al. Regulating the tip effect on single-atom and cluster catalysts: forming reversible oxygen species with high efficiency in chlorine evolution reaction. , 2022, Angewandte Chemie.
[34] Zhanggeng Huang,et al. The intrinsic effects of oxygen vacancy and doped non-noble metal in TiO2(B) on photocatalytic oxidation VOCs by visible light driving , 2022, Journal of Environmental Chemical Engineering.
[35] Jie Wu,et al. Switching on photocatalytic NO oxidation and proton reduction of NH2-MIL-125(Ti) by convenient linker defect engineering. , 2022, Journal of hazardous materials.
[36] Lizhi Zhang,et al. Vacancy-Rich and Porous NiFe-Layered Double Hydroxide Ultrathin Nanosheets for Efficient Photocatalytic NO Oxidation and Storage. , 2022, Environmental science & technology.
[37] Dingsheng Wang,et al. P-d orbital hybridization induced by monodispersed Ga site on Pt3Mn nanocatalyst boosts ethanol electrooxidation. , 2022, Angewandte Chemie.
[38] Yanmei Zheng,et al. Plasma-Tuned nitrogen vacancy graphitic carbon nitride sphere for efficient photocatalytic H2O2 production. , 2021, Journal of colloid and interface science.
[39] F. Dong,et al. Atomic interfacial structure and charge transfer mechanism on in-situ formed BiOI/Bi2O2SO4 p–n heterojunctions with highly promoted photocatalysis , 2021 .
[40] Yu Huang,et al. Constructing Pd/Ferroelectric Bi4Ti3O12 Nanoflake Interfaces for O2 Activation and Boosting NO Photo-oxidation , 2021, Applied Catalysis B: Environmental.
[41] Dongyun Chen,et al. Fabrication of an FAPbBr3/g-C3N4 heterojunction to enhance NO removal efficiency under visible-light irradiation , 2021, Chemical Engineering Journal.
[42] Xuping Sun. High-Performance Electrochemical NO Reduction into NH3 by MoS2 Nanosheet. , 2021, Angewandte Chemie.
[43] Guanggang Gao,et al. Role of B-doping in g-C3N4 nanosheets for enhanced photocatalytic NO removal and H2 generation , 2021, Journal of Industrial and Engineering Chemistry.
[44] Xu-xu Zheng,et al. Porphyrin-Based Ti-MOFs Conferred with Single-Atom Pt for Enhanced Photocatalytic Hydrogen Evolution and NO Removal , 2021 .
[45] F. Dong,et al. Doping and facet effects synergistically mediated interfacial reaction mechanism and selectivity in photocatalytic NO abatement. , 2021, Journal of colloid and interface science.
[46] Yuhong Huang,et al. Maximizing the Formation of Reactive Oxygen Species for Deep Oxidation of NO via Manipulating the Oxygen-Vacancy Defect Position on (BiO)2CO3 , 2021 .
[47] W. Choi,et al. Photocatalytic air purification mimicking the self-cleaning process of the atmosphere , 2021, Nature Communications.
[48] Q. Meng,et al. Confining single-atom Pd on g-C3N4 with carbon vacancies towards enhanced photocatalytic NO conversion , 2021 .
[49] Xianzhi Fu,et al. Oxygen defect-induced NO− intermediates promoting NO deep oxidation over Ce doped SnO2 under visible light , 2021 .
[50] Xiaofang Li,et al. In Situ Loading of MoO3 Clusters on Ultrathin Bi2MoO6 Nanosheets for Synergistically Enhanced Photocatalytic NO Abatement , 2021 .
[51] Yihe Zhang,et al. Atomic‐Level Charge Separation Strategies in Semiconductor‐Based Photocatalysts , 2021, Advanced materials.
[52] Xianzhi Fu,et al. Visible-light-driven deep oxidation of NO over Fe doped TiO2 catalyst: Synergic effect of Fe and oxygen vacancies , 2020 .
[53] Jiajie Fan,et al. 2D g-C3N4 for advancement of photo-generated carrier dynamics: Status and challenges , 2020 .
[54] Jiajie Fan,et al. Fe1 /TiO2 Hollow Microspheres: Fe and Ti Dual Active Sites Boosting the Photocatalytic Oxidation of NO. , 2020, Small.
[55] Quang Viet Ly,et al. Photocatalytic NOx abatement: Recent advances and emerging trends in the development of photocatalysts , 2020 .
[56] Jianwu Sun,et al. Photocatalytic removal of NO by intercalated carbon nitride: The effect of group IIA element ions , 2020 .
[57] Yuesi Wang,et al. Different HONO sources for three layers at the urban area of Beijing. , 2020, Environmental science & technology.
[58] Xiaoye Zhang,et al. Efficient conversion of NO to NO2 on SO2-aged MgO under atmospheric conditions. , 2020, Environmental science & technology.
[59] W. Ho,et al. g‐C 3 N 4 /TiO 2 Composite Film in the Fabrication of a Photocatalytic Air‐Purifying Pavements , 2020 .
[60] Hexing Li,et al. NH2-UiO-66(Zr) with fast electron transfer routes for breaking down nitric oxide via photocatalysis , 2020 .
[61] F. Dong,et al. La-doping induced localized excess electrons on (BiO)2CO3 for efficient photocatalytic NO removal and toxic intermediates suppression. , 2020, Journal of hazardous materials.
[62] D. Jacob,et al. Fast sulfate formation from oxidation of SO2 by NO2 and HONO observed in Beijing haze , 2020, Nature Communications.
[63] W. Ho,et al. C3N4 with engineered three coordinated (N3C) nitrogen vacancy boosts the production of 1O2 for Efficient and stable NO photo-oxidation , 2020 .
[64] Hao Chen,et al. Insight into the effect of bromine on facet-dependent surface oxygen vacancies construction and stabilization of Bi2MoO6 for efficient photocatalytic NO removal , 2020 .
[65] F. Dong,et al. Surface modification to control the secondary pollution of photocatalytic nitric oxide removal over monolithic protonated g-C3N4/graphene oxide aerogel. , 2020, Journal of hazardous materials.
[66] Lizhi Zhang,et al. Dual-site activation enhanced photocatalytic removal of no with Au/CeO2 , 2020 .
[67] Wenrui Dai,et al. Gas-phase photoelectrocatalytic oxidation of NO via TiO2 nanorods arrays/FTO photoanodes. , 2020, Environmental science & technology.
[68] Xijiang Han,et al. Recent Advances in Plasmonic Nanostructures for Enhanced Photocatalysis and Electrocatalysis , 2020, Advanced materials.
[69] Mohammad Hossein Davood Abadi Farahani,et al. A review on the synthesis of the various types of anatase TiO2 facets and their applications for photocatalysis , 2020 .
[70] Shiming Zhou,et al. Electrochemical deposition as a universal route for fabricating single-atom catalysts , 2020, Nature Communications.
[71] Jiajie Fan,et al. Carbon vacancy in C3N4 nanotube: Electronic structure, photocatalysis mechanism and highly enhanced activity , 2020 .
[72] Dongyun Chen,et al. Surface engineering of g-C3N4 by stacked oxygen vacancies-rich BiOBr sheets for boosting photocatalytic performance. , 2019, Angewandte Chemie.
[73] Jiajie Fan,et al. Photosensitization of Bi2O2CO3 nanoplates with amorphous Bi2S3 to improve the visible photoreactivity towards NO oxidation , 2019, Applied Surface Science.
[74] Guohui Dong,et al. The deep oxidation of NO was realized by Sr multi-site doped g-C3N4 via photocatalytic method , 2019, Applied Catalysis B: Environmental.
[75] Xiaofang Li,et al. Dramatic promotion of visible-light photoreactivity of TiO2 hollow microspheres towards NO oxidation by introduction of oxygen vacancy , 2019, Applied Catalysis B: Environmental.
[76] Shengchun Yang,et al. Orienting the charge transfer path of type-II heterojunction for photocatalytic hydrogen evolution , 2019, Applied Catalysis B: Environmental.
[77] R. Li,et al. Atomic layer deposited Pt-Ru dual-metal dimers and identifying their active sites for hydrogen evolution reaction , 2019, Nature Communications.
[78] Wei‐Qing Huang,et al. Dimensional transformation and morphological control of graphitic carbon nitride from water-based supramolecular assembly for photocatalytic hydrogen evolution: from 3D to 2D and 1D nanostructures , 2019, Applied Catalysis B: Environmental.
[79] Yuxin Zhang,et al. Carbonate-intercalated defective bismuth tungstate for efficiently photocatalytic NO removal and promotion mechanism study , 2019, Applied Catalysis B: Environmental.
[80] A. Mohamed,et al. Effective steering of charge flow through synergistic inducing oxygen vacancy defects and p-n heterojunctions in 2D/2D surface-engineered Bi2WO6/BiOI cascade: Towards superior photocatalytic CO2 reduction activity , 2019, Chemical Engineering Journal.
[81] A. Ding,et al. Aggravating O3 pollution due to NOx emission control in eastern China. , 2019, The Science of the total environment.
[82] Xianming Zhang,et al. Defective borate-decorated polymer carbon nitride: Enhanced photocatalytic NO removal, synergy effect and reaction pathway , 2019, Applied Catalysis B: Environmental.
[83] Yuhan Li,et al. Interfacial Charging-Decharging Strategy for Efficient and Selective Aerobic NO Oxidation on Oxygen Vacancy. , 2019, Environmental science & technology.
[84] Wei Chen,et al. Gas-Phase Photoelectrocatalysis for Breaking Down Nitric Oxide. , 2019, Environmental science & technology.
[85] Xiaofei Yang,et al. Interfacial optimization of g-C3N4-based Z-scheme heterojunction toward synergistic enhancement of solar-driven photocatalytic oxygen evolution , 2019, Applied Catalysis B: Environmental.
[86] Lizhi Zhang,et al. Oxygen Vacancies Promoted the Selective Photocatalytic Removal of NO with Blue TiO2 via Simultaneous Molecular Oxygen Activation and Photogenerated Hole Annihilation. , 2019, Environmental science & technology.
[87] Barnabas C. Seyler,et al. Air pollution reduction in China: Recent success but great challenge for the future. , 2019, The Science of the total environment.
[88] W. Ho,et al. Effects of H2O2 generation over visible light-responsive Bi/Bi2O2−CO3 nanosheets on their photocatalytic NO removal performance , 2019, Chemical Engineering Journal.
[89] Hexing Li,et al. A chloroplast structured photocatalyst enabled by microwave synthesis , 2019, Nature Communications.
[90] Dongyun Chen,et al. Integration of 3D macroscopic graphene aerogel with 0D-2D AgVO3-g-C3N4 heterojunction for highly efficient photocatalytic oxidation of nitric oxide , 2019, Applied Catalysis B: Environmental.
[91] Mengxing Liu,et al. Synthesis of Bi2WO6 with gradient oxygen vacancies for highly photocatalytic NO oxidation and mechanism study , 2019, Chemical Engineering Journal.
[92] F. Dong,et al. Transformation pathway and toxic intermediates inhibition of photocatalytic NO removal on designed Bi metal@defective Bi2O2SiO3 , 2019, Applied Catalysis B: Environmental.
[93] Xiaofang Li,et al. Enhanced visible photocatalytic oxidation of NO by repeated calcination of g-C3N4 , 2019, Applied Surface Science.
[94] F. Dong,et al. Tailoring the rate-determining step in photocatalysis via localized excess electrons for efficient and safe air cleaning , 2018, Applied Catalysis B: Environmental.
[95] W. Ho,et al. Self-assembly synthesis of boron-doped graphitic carbon nitride hollow tubes for enhanced photocatalytic NOx removal under visible light , 2018, Applied Catalysis B: Environmental.
[96] F. Dong,et al. Enhancing ROS generation and suppressing toxic intermediate production in photocatalytic NO oxidation on O/Ba co-functionalized amorphous carbon nitride , 2018, Applied Catalysis B: Environmental.
[97] F. Dong,et al. Photocatalytic NO oxidation on N-doped TiO2/g-C3N4 heterojunction: Enhanced efficiency, mechanism and reaction pathway , 2018, Applied Surface Science.
[98] Y. Xiong,et al. Defect engineering in photocatalytic materials , 2018, Nano Energy.
[99] Cheng Yan,et al. Defect-Rich Bi12 O17 Cl2 Nanotubes Self-Accelerating Charge Separation for Boosting Photocatalytic CO2 Reduction. , 2018, Angewandte Chemie.
[100] Yu Huang,et al. Oxygen vacancy engineering of Bi2O3/Bi2O2CO3 heterojunctions: Implications of the interfacial charge transfer, NO adsorption and removal , 2018, Applied Catalysis B: Environmental.
[101] F. Dong,et al. The activation of reactants and intermediates promotes the selective photocatalytic NO conversion on electron-localized Sr-intercalated g-C3N4 , 2018, Applied Catalysis B: Environmental.
[102] Lizhi Zhang,et al. Oxygen Vacancies Mediated Complete Visible Light NO Oxidation via Side-On Bridging Superoxide Radicals. , 2018, Environmental science & technology.
[103] F. Dong,et al. Highly enhanced visible light photocatalysis and in situ FT-IR studies on Bi metal@defective BiOCl hierarchical microspheres , 2018, Applied Catalysis B: Environmental.
[104] Chuncheng Chen,et al. Photochemical Aging of Beijing Urban PM2.5: HONO Production. , 2018, Environmental science & technology.
[105] Yingchun Miao,et al. Controllable synthesis of mesoporous multi-shelled ZnO microspheres as efficient photocatalysts for NO oxidation , 2018 .
[106] L. Gu,et al. Cation vacancy stabilization of single-atomic-site Pt1/Ni(OH)x catalyst for diboration of alkynes and alkenes , 2018, Nature Communications.
[107] Yadong Li,et al. Defect Effects on TiO2 Nanosheets: Stabilizing Single Atomic Site Au and Promoting Catalytic Properties , 2018, Advanced materials.
[108] Yang Song,et al. Hierarchical Z-scheme photocatalyst of g-C3N4@Ag/BiVO4 (040) with enhanced visible-light-induced photocatalytic oxidation performance , 2018 .
[109] W. Ho,et al. Carbon vacancy-induced enhancement of the visible light-driven photocatalytic oxidation of NO over g-C3N4 nanosheets , 2018 .
[110] Dunwei Wang,et al. Photocatalysis: Basic Principles, Diverse Forms of Implementations and Emerging Scientific Opportunities , 2017 .
[111] Dongyun Chen,et al. In situ fabrication of Bi2O2CO3/MoS2 on carbon nanofibers for efficient photocatalytic removal of NO under visible-light irradiation , 2017 .
[112] Tao Yao,et al. Atomic-Level Insight into Optimizing the Hydrogen Evolution Pathway over a Co1 -N4 Single-Site Photocatalyst. , 2017, Angewandte Chemie.
[113] Zhongbiao Wu,et al. Highly Efficient Performance and Conversion Pathway of Photocatalytic NO Oxidation on SrO-Clusters@Amorphous Carbon Nitride. , 2017, Environmental science & technology.
[114] Y. Nosaka,et al. Generation and Detection of Reactive Oxygen Species in Photocatalysis. , 2017, Chemical reviews.
[115] Jianjun He,et al. Air pollution in China: Status and spatiotemporal variations. , 2017, Environmental pollution.
[116] Jacek K. Stolarczyk,et al. Urea‐Modified Carbon Nitrides: Enhancing Photocatalytic Hydrogen Evolution by Rational Defect Engineering , 2017 .
[117] W. Ho,et al. Environment-Friendly Carbon Quantum Dots/ZnFe2O4 Photocatalysts: Characterization, Biocompatibility, and Mechanisms for NO Removal. , 2017, Environmental science & technology.
[118] R. Li,et al. Platinum single-atom and cluster catalysis of the hydrogen evolution reaction , 2016, Nature Communications.
[119] Y. Xiong,et al. Facet‐Engineered Surface and Interface Design of Photocatalytic Materials , 2016, Advanced science.
[120] X. Chang,et al. Effective Charge Carrier Utilization in Photocatalytic Conversions. , 2016, Accounts of chemical research.
[121] Ying Dai,et al. Energy transfer in plasmonic photocatalytic composites , 2016, Light: Science & Applications.
[122] Xinchen Wang,et al. Graphitic Carbon Nitride Polymers toward Sustainable Photoredox Catalysis. , 2015, Angewandte Chemie.
[123] Swagata Banerjee,et al. Self-Cleaning Applications of TiO2 by Photo-Induced Hydrophilicity and Photocatalysis , 2015 .
[124] Sixto Malato,et al. Solar photocatalysis: Materials, reactors, some commercial, and pre-industrialized applications. A comprehensive approach , 2015 .
[125] Yong Zhou,et al. State‐of‐the‐Art Progress in Diverse Heterostructured Photocatalysts toward Promoting Photocatalytic Performance , 2015 .
[126] M. Molina,et al. Elucidating severe urban haze formation in China , 2014, Proceedings of the National Academy of Sciences.
[127] Y. Horiuchi,et al. Understanding TiO2 photocatalysis: mechanisms and materials. , 2014, Chemical reviews.
[128] A. Piazzalunga,et al. High secondary aerosol contribution to particulate pollution during haze events in China , 2014, Nature.
[129] W. Ho,et al. Immobilization of polymeric g-C3N4 on structured ceramic foam for efficient visible light photocatalytic air purification with real indoor illumination. , 2014, Environmental science & technology.
[130] Jiaguo Yu,et al. Enhanced photocatalytic performance of direct Z-scheme g-C3N4-TiO2 photocatalysts for the decomposition of formaldehyde in air. , 2013, Physical chemistry chemical physics : PCCP.
[131] Gianmario Martra,et al. FTIR and TPD Study of the Room Temperature Interaction of a NO–Oxygen Mixture and of NO2 with Titanium Dioxide , 2013 .
[132] B. Brunekreef,et al. Spatial variation of PM2.5, PM10, PM2.5 absorbance and PMcoarse concentrations between and within 20 European study areas and the relationship with NO2 : results of the ESCAPE project , 2012 .
[133] D. Bahnemann,et al. Kinetics and mechanisms of charge transfer processes in photocatalytic systems: A review , 2012 .
[134] V. Grassian,et al. Titanium dioxide photocatalysis in atmospheric chemistry. , 2012, Chemical reviews.
[135] Jiangwei Chu,et al. NOx photocatalytic degradation on active concrete road surface — from experiment to real-scale application , 2011 .
[136] Lizhi Zhang,et al. Efficient visible light driven photocatalytic removal of NO with aerosol flow synthesized B, N-codoped TiO2 hollow spheres. , 2011, Journal of hazardous materials.
[137] Tracey M. Clarke,et al. Charge photogeneration in organic solar cells. , 2010, Chemical reviews.
[138] Sean C. Smith,et al. Solvothermal synthesis and photoreactivity of anatase TiO(2) nanosheets with dominant {001} facets. , 2009, Journal of the American Chemical Society.
[139] Zhaoxiong Xie,et al. Synthesis of titania nanosheets with a high percentage of exposed (001) facets and related photocatalytic properties. , 2009, Journal of the American Chemical Society.
[140] Jin Zou,et al. Anatase TiO2 single crystals with a large percentage of reactive facets , 2008, Nature.
[141] Jamie Matthews,et al. Atmospheric Hydroxyl Radical Production from Electronically Excited NO2 and H2O , 2008, Science.
[142] M Liakou,et al. Photocatalytic degradation of NOx gases using TiO2-containing paint: a real scale study. , 2007, Journal of hazardous materials.
[143] Christian George,et al. Photosensitized reduction of nitrogen dioxide on humic acid as a source of nitrous acid , 2006, Nature.
[144] Chunli Bai,et al. Ascent of Nanoscience in China , 2005, Science.
[145] Dongyun Chen,et al. Z-Scheme 2D/2D α-Fe2O3/g-C3N4 heterojunction for photocatalytic oxidation of nitric oxide , 2021 .
[146] Vijay K. Tomer,et al. State-of-the-art review of morphological advancements in graphitic carbon nitride (g-CN) for sustainable hydrogen production , 2021 .
[147] Jianzhi Gao,et al. Oxygen vacancy defects-boosted deep oxidation of NO by β-Bi2O3/CeO2-δ p-n heterojunction photocatalyst in situ synthesized from Bi/Ce(CO3)(OH) precursor , 2021 .
[148] Shanshan Wu,et al. Enhanced durability of nitric oxide removal on TiO2 (P25) under visible light: Enabled by the direct Z-scheme mechanism and enhanced structure defects through coupling with C3N5 , 2021 .
[149] Zhiming M. Wang,et al. Nitrogen defect structure and NO+ intermediate promoted photocatalytic NO removal on H2 treated g-C3N4 , 2020 .
[150] A. Bard. Photoelectrochemistry and heterogeneous photo-catalysis at semiconductors , 1979 .