MXene Ti3C2 decorated g-C3N4/ZnO photocatalysts with improved photocatalytic performance for CO2 reduction
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Xifei Li | Yao Guo | Xianchang Li | Haixiang Song | Yitong Wang | Wanyu Shang | Qianqian Gao | Jianxin Li | Shiding Zhang | Shuaishuai Hu | Huibin Zheng | Yuhua Wang
[1] Peng Zhang,et al. Charge transfer and orbital reconstruction of non-noble transition metal single-atoms anchored on Ti2CT -MXenes for highly selective CO2 electrochemical reduction , 2022, Chinese Journal of Catalysis.
[2] S. Kang,et al. Inorganometallic Photocatalyst for CO2 Reduction. , 2021, Accounts of chemical research.
[3] Y. S. Wu,et al. Morphologies and material properties of ZnO nanotubes, ZnO/ZnS core-shell nanorods, and ZnO/ZnS core-shell nanotubes , 2021, Ceramics International.
[4] S. Khanna,et al. Impact of piezoelectric effect on the heterogeneous visible photocatalysis of g-C3N4/Ag/ZnO tricomponent. , 2021, Chemosphere.
[5] 姜志民,et al. 集成二维层状CdS/WO3 S型异质结及金属化Ti3C2 MXene基欧姆结高效光催化产氢的研究 , 2021 .
[6] Lei Cheng,et al. Structural engineering of 3D hierarchical Cd0.8Zn0.2S for selective photocatalytic CO2 reduction , 2021, Chinese Journal of Catalysis.
[7] Zhengu Chen,et al. Remarkable oxygen evolution by Co-doped ZnO nanorods and visible light , 2021 .
[8] Xianchang Li,et al. A facile synthesis of high-crystalline g-C3N4 nanosheets with closed self-assembly strategy for enhanced photocatalytic H2 evolution , 2021 .
[9] P. Zhu,et al. High visible light response Z-scheme Ag3PO4 / g-C3N4 / ZnO composite photocatalyst for efficient degradation of tetracycline hydrochloride: Preparation, properties and mechanism , 2020 .
[10] Kuei-Hsien Chen,et al. Integrated nano-architectured photocatalysts for photochemical CO2 reduction. , 2020, Nanoscale.
[11] Jiaguo Yu,et al. 2D/2D/0D TiO2/C3N4/Ti3C2 MXene composite S-scheme photocatalyst with enhanced CO2 reduction activity , 2020 .
[12] B. Su,et al. Light-assisted preparation of heterostructured g-C3N4/ZnO nanorods arrays for enhanced photocatalytic hydrogen performance , 2020 .
[13] Jiajie Fan,et al. 2D/2D Ti3C2 MXene/g-C3N4 nanosheets heterojunction for high efficient CO2 reduction photocatalyst: Dual effects of urea , 2020 .
[14] R. Klie,et al. Covalent surface modifications and superconductivity of two-dimensional metal carbide MXenes , 2020, Science.
[15] Juan Wang,et al. In situ fabrication of 2D/3D g-C3N4/Ti3C2 (MXene) heterojunction for efficient visible-light photocatalytic hydrogen evolution , 2020 .
[16] F. Dong,et al. Ti3C2 MXene modified g-C3N4 with enhanced visible-light photocatalytic performance for NO purification. , 2020, Journal of colloid and interface science.
[17] Yi Xie,et al. Broad-Spectral-Response Photocatalysts for CO2 Reduction , 2020, ACS central science.
[18] Tianduo Li,et al. Three-dimensional flower heterojunction g-C3N4/Ag/ZnO composed of ultrathin nanosheets with enhanced photocatalytic performance , 2020 .
[19] S. Harish,et al. Facile construction of djembe-like ZnO and its composite with g-C3N4 as a visible-light-driven heterojunction photocatalyst for the degradation of organic dyes , 2020 .
[20] Gang Chen,et al. 2D Ti3C2 as electron harvester anchors on 2D g-C3N4 to create boundary edge active sites for boosting photocatalytic performance , 2020 .
[21] S. Deng,et al. Decorating g-C3N4 with alkalinized Ti3C2 MXene for promoted photocatalytic CO2 reduction performance. , 2019, Journal of colloid and interface science.
[22] H. Cui,et al. Boosting the photocatalytic ability of g-C3N4 for hydrogen production by Ti3C2 MXene quantum dots. , 2019, ACS applied materials & interfaces.
[23] P. Ajayan,et al. Metal Oxides Mediated Subtractive Manufacturing of Two-Dimensional Carbon Nitride for High Efficiency and High Yield Photocatalytic H2 Evolution. , 2019, ACS nano.
[24] Lili Jiang,et al. Salt-assisted synthesis of 3D porous g-C3N4 as a bi-functional photo and electro catalyst. , 2019, ACS applied materials & interfaces.
[25] Cláudia G. Silva,et al. Metal-free g-C3N4 photocatalysis of organic micropollutants in urban wastewater under visible light , 2019, Applied Catalysis B: Environmental.
[26] E. Shin,et al. Effect of g-C3N4 precursors on the morphological structures of g-C3N4/ZnO composite photocatalysts , 2019, Journal of Alloys and Compounds.
[27] Min Chen,et al. A “ship-in-a-bottle” strategy to fabricate highly crystallized nanoporous graphitic C3N4 microspheres under pressurized conditions , 2019, Journal of Materials Chemistry A.
[28] Hong Guo,et al. Controlled assemble of hollow heterostructured g-C3N4@CeO2 with rich oxygen vacancies for enhanced photocatalytic CO2 reduction , 2019, Applied Catalysis B: Environmental.
[29] Mietek Jaroniec,et al. Cocatalysts for Selective Photoreduction of CO2 into Solar Fuels. , 2019, Chemical reviews.
[30] Shaojun Guo,et al. Strengthening reactive metal-support interaction to stabilize high-density Pt single atoms on electron-deficient g-C3N4 for boosting photocatalytic H2 production , 2019, Nano Energy.
[31] X. Tan,et al. Temperature dependent photocatalysis of g-C3N4, TiO2 and ZnO: Differences in photoactive mechanism. , 2018, Journal of colloid and interface science.
[32] Wenbin Wang,et al. Facile preparation of hollow-nanosphere based mesoporous g-C3N4 for highly enhanced visible-light-driven photocatalytic hydrogen evolution , 2018, Applied Surface Science.
[33] Jiaguo Yu,et al. Metal‐Free 2D/2D Phosphorene/g‐C3N4 Van der Waals Heterojunction for Highly Enhanced Visible‐Light Photocatalytic H2 Production , 2018, Advanced materials.
[34] Jiaguo Yu,et al. Self-assembled hierarchical direct Z-scheme g-C 3 N 4 /ZnO microspheres with enhanced photocatalytic CO 2 reduction performance , 2018 .
[35] Jiajian Gao,et al. Identifying Active Sites of Nitrogen‐Doped Carbon Materials for the CO2 Reduction Reaction , 2018 .
[36] Jiaguo Yu,et al. g‐C3N4‐Based Heterostructured Photocatalysts , 2018 .
[37] Yu-hua Wang,et al. Nonlinear optical properties of metal nanoparticles: a review , 2017 .
[38] Yury Gogotsi,et al. Guidelines for Synthesis and Processing of Two-Dimensional Titanium Carbide (Ti3C2Tx MXene) , 2017 .
[39] Shuyan Song,et al. Preparation of Carbon-Rich g-C3 N4 Nanosheets with Enhanced Visible Light Utilization for Efficient Photocatalytic Hydrogen Production. , 2017, Small.
[40] Minshen Zhu,et al. Photoluminescent Ti3C2 MXene Quantum Dots for Multicolor Cellular Imaging , 2017, Advanced materials.
[41] T. Peng,et al. Recent Advances in Heterogeneous Photocatalytic CO2 Conversion to Solar Fuels , 2016 .
[42] L. Qu,et al. Atomically Thin Mesoporous Nanomesh of Graphitic C₃N₄ for High-Efficiency Photocatalytic Hydrogen Evolution. , 2016, ACS nano.
[43] M. Fan,et al. Z-scheme SnO2−x/g-C3N4 composite as an efficient photocatalyst for dye degradation and photocatalytic CO2 reduction , 2015 .
[44] M. Fan,et al. High-efficiency conversion of CO2 to fuel over ZnO/g-C3N4 photocatalyst , 2015 .
[45] Maohong Fan,et al. New application of Z-scheme Ag3PO4/g-C3N4 composite in converting CO2 to fuel. , 2015, Environmental science & technology.
[46] Hong Huang,et al. Construction of heterostructured g-C₃N₄/Ag/TiO₂ microspheres with enhanced photocatalysis performance under visible-light irradiation. , 2014, ACS applied materials & interfaces.
[47] Y. Lin,et al. Synthesis of rod-cluster ZnO nanostructures and their application to dye-sensitized solar cells , 2013 .
[48] Chunxiang Xu,et al. Facile synthesis of g-C3N4/ZnO composite with enhanced visible light photooxidation and photoreduction properties , 2012 .
[49] A. Majumdar,et al. Opportunities and challenges for a sustainable energy future , 2012, Nature.
[50] V. Presser,et al. Two‐Dimensional Nanocrystals Produced by Exfoliation of Ti3AlC2 , 2011, Advanced materials.
[51] Umair Manzoor,et al. Size control of ZnO nanostructures formed in different temperature zones by varying Ar flow rate with tunable optical properties , 2009 .