Boosting photo-charge transfer in 3D/2D TiO2@Ti3C2 MXene/Bi2S3 Schottky/Z-scheme heterojunction for photocatalytic antibiotic degradation and H2 evolution
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[1] Xiaomin Tang,et al. Layer-by-layer repaired lamellar membrane for low stacking defect of MXene nanosheets and efficient separation performance in water purification , 2023, Journal of Environmental Chemical Engineering.
[2] R. Juang,et al. A sonochemical synthesis of SrTiO3 supported N-doped graphene oxide as a highly efficient electrocatalyst for electrochemical reduction of a chemotherapeutic drug , 2023, Ultrasonics sonochemistry.
[3] C. Ahn,et al. Effective excitons separation in starfish Bi2S3/TiO2 nanostructures for enhanced hydrogen production , 2022, Materials Today Chemistry.
[4] M. Tayyab,et al. One-pot in-situ hydrothermal synthesis of ternary In2S3/Nb2O5/Nb2C Schottky/S-scheme integrated heterojunction for efficient photocatalytic hydrogen production. , 2022, Journal of colloid and interface science.
[5] Kim Dan Nguyen,et al. Enhanced photocatalytic H2 evolution and photodegradation of antibiotic tetracycline in wastewater by TiO2@Ti3C2 , 2022, International Journal of Hydrogen Energy.
[6] Xinhe Wu,et al. 0d/3d Bi3tao7/Znin2s4 Heterojunction Photocatalyst Towards Degradation of Antibiotics Coupled with Simultaneous H2 Evolution: In Situ Irradiated Xps Investigation and S-Scheme Mechanism Insight , 2022, SSRN Electronic Journal.
[7] K. Parida,et al. Rationally designed Ti3C2/N, S-TiO2/g-C3N4 ternary heterostructure with spatial charge separation for enhanced photocatalytic hydrogen evolution. , 2022, Journal of colloid and interface science.
[8] Xiaohui Jiang,et al. A novel Z-scheme NH2-MIL-125(Ti)/Ti3C2 QDs/ZnIn2S4 photocatalyst with fast interfacial electron transfer properties for visible light-driven antibiotic degradation and hydrogen evolution , 2022, Separation and Purification Technology.
[9] B. Liu,et al. Boosting photocharge separation in Z-schemed g-C3N4/RGO/ln2S3 photocatalyst for H2 evolution and antibiotic degradation , 2022, Journal of Industrial and Engineering Chemistry.
[10] M. Shao,et al. Enabling efficient electrocatalytic conversion of N2 to NH3 by Ti3C2 MXene loaded with semi-metallic 1 T'-MoS2 nanosheets , 2022, Applied Catalysis B: Environmental.
[11] Xin Yuan,et al. Cyano-bridged Schottky junction of CN-TiC for enhanced photocatalytic H2 evolution and tetracycline degradation , 2022, Applied Surface Science.
[12] Wei Zhou,et al. Hollow Semiconductor Photocatalysts for Solar Energy Conversion , 2021, Advanced Powder Materials.
[13] Jianxing Shen,et al. In situ configuration of dual S-scheme BP/(Ti3C2Tx@TiO2) heterojunction for broadband spectrum solar-driven photocatalytic H2 evolution in pure water. , 2021, Journal of colloid and interface science.
[14] Muhammad Tahir,et al. Role of Ti3C2 MXene as Prominent Schottky Barriers in Driving Hydrogen Production through Photoinduced Water Splitting: A Comprehensive Review , 2021, ACS Applied Energy Materials.
[15] Wei Zhou,et al. Plasmon Ag/Na-Doped Defective Graphite Carbon Nitride/NiFe Layered Double Hydroxides Z-Scheme Heterojunctions toward Optimized Photothermal-Photocatalytic-Fenton Performance , 2021, Applied Catalysis B: Environmental.
[16] Ai-min Wang,et al. Hierarchical defect-rich flower-like BiOBr/Ag nanoparticles/ultrathin g-C3N4 with transfer channels plasmonic Z-scheme heterojunction photocatalyst for accelerated visible-light-driven photothermal-photocatalytic oxytetracycline degradation , 2021 .
[17] Changling Li,et al. The co-decorated TiO2 nanorod array photoanodes by CdS/CdSe to promote photoelectrochemical water splitting , 2021 .
[18] Ying Dai,et al. TiO2/Ti3C2 as an efficient photocatalyst for selective oxidation of benzyl alcohol to benzaldehyde , 2021, Applied Catalysis B: Environmental.
[19] Lianxi Zheng,et al. A review of material aspects in developing direct Z-scheme photocatalysts , 2021, Materials Today.
[20] R. Long,et al. 3D MXene/Ag2S material as Schottky junction catalyst with stable and enhanced photocatalytic activity and photocorrosion resistance , 2021, Separation and Purification Technology.
[21] B. Fang,et al. Emerging polymeric carbon nitride Z-scheme systems for photocatalysis , 2021 .
[22] J. Noh,et al. Unusual synthesis of safflower-shaped TiO2/Ti3C2 heterostructures initiated from two-dimensional Ti3C2 MXene , 2021 .
[23] Yujia Yan,et al. A novel S-scheme 1D/2D Bi2S3/g-C3N4 heterojunctions with enhanced H2 evolution activity , 2021 .
[24] Jiajie Fan,et al. MXenes as noble-metal-alternative co-catalysts in photocatalysis , 2021, Chinese Journal of Catalysis.
[25] Sewoon Kim,et al. Review of MXene-based nanocomposites for photocatalysis. , 2020, Chemosphere.
[26] Zhiqun Lin,et al. Silk fibroin-derived nitrogen-doped carbon quantum dots anchored on TiO2 nanotube arrays for heterogeneous photocatalytic degradation and water splitting , 2020 .
[27] Shaojia Song,et al. Facile synthesis of Bi2WO6/C3N4/Ti3C2 composite as Z-scheme photocatalyst for efficient ciprofloxacin degradation and H2 production , 2020 .
[28] Kecheng Zhang,et al. Preparation of facet exposed TiO2/Ti3C2T composites with enhanced photocatalytic activity , 2020 .
[29] T. Klimczuk,et al. Urchin-like TiO2 structures decorated with lanthanide-doped Bi2S3 quantum dots to boost hydrogen photogeneration performance , 2020, Applied Catalysis B: Environmental.
[30] E. Khan,et al. Recent advances in photodegradation of antibiotic residues in water , 2020, Chemical Engineering Journal.
[31] Jiaguo Yu,et al. S-Scheme Heterojunction Photocatalyst , 2020, Chem.
[32] Hongbing Ji,et al. Theoretical and experimental research of novel fluorine doped hierarchical Sn3O4 microspheres with excellent photocatalytic performance for removal of Cr(VI) and organic pollutants , 2020, Chemical Engineering Journal.
[33] Chengyi Hou,et al. Ti3C2 MXene-derived carbon-doped TiO2 coupled with g-C3N4 as the visible-light photocatalysts for photocatalytic H2 generation , 2020 .
[34] Chuanyu Jin,et al. Deposition-precipitation synthesis of Yb3+/Er3+ co-doped BiOBr/AgBr heterojunction photocatalysts with enhanced photocatalytic activity under Vis/NIR light irradiation , 2020 .
[35] Huajun Sun,et al. Construction of BPQDs/Ti3C2@TiO2 Composites with Favorable Charge Transfer Channels for Enhanced Photocatalytic Activity under Visible Light Irradiation , 2020, Nanomaterials.
[36] I. Dincer,et al. The potential role of hydrogen as a sustainable transportation fuel to combat global warming , 2020 .
[37] X. Tan,et al. MXene as a non-metal charge mediator in 2D layered CdS@Ti3C2@TiO2 composites with superior Z-scheme visible light-driven photocatalytic activity , 2019, Environmental Science: Nano.
[38] Jiawei Zhang,et al. Preparation and characterization of Bi2S3/3DOM-TiO2 for efficient photocatalytic degradation of rhodamine B , 2019, Materials Science in Semiconductor Processing.
[39] Yun Song,et al. One-step in-situ preparation of N-doped TiO2@C derived from Ti3C2 MXene for enhanced visible-light driven photodegradation , 2019, Applied Catalysis B: Environmental.
[40] M. Mehmood,et al. Two-dimensional transition metal carbide (Ti3C2Tx) as an efficient adsorbent to remove cesium (Cs+). , 2019, Dalton transactions.
[41] William W. Yu,et al. Latest progress in constructing solid-state Z scheme photocatalysts for water splitting. , 2019, Nanoscale.
[42] Y. Gogotsi,et al. Effect of Ti3AlC2 MAX Phase on Structure and Properties of Resultant Ti3C2Tx MXene , 2019, ACS Applied Nano Materials.
[43] A. Amani‐Ghadim,et al. ZnS quantum dot intercalated layered double hydroxide semiconductors for solar water splitting and organic pollutant degradation , 2019, Journal of Materials Chemistry A.
[44] Songcan Wang,et al. Crystal Facet Engineering of Photoelectrodes for Photoelectrochemical Water Splitting. , 2019, Chemical reviews.
[45] Mietek Jaroniec,et al. Cocatalysts for Selective Photoreduction of CO2 into Solar Fuels. , 2019, Chemical reviews.
[46] T. He,et al. Highly efficient visible-light driven solar-fuel production over tetra(4-carboxyphenyl)porphyrin iron(III) chloride using CdS/Bi2S3 heterostructure as photosensitizer , 2018, Applied Catalysis B: Environmental.
[47] Hao Yu,et al. High efficiency photocatalytic hydrogen production over ternary Cu/TiO2@Ti3C2Tx enabled by low-work-function 2D titanium carbide , 2018, Nano Energy.
[48] Fangcong Wang,et al. BiVO4 quantum tubes loaded on reduced graphene oxide aerogel as efficient photocatalyst for gaseous formaldehyde degradation , 2018, Carbon.
[49] Lai-fei Cheng,et al. Laminated Hybrid Junction of Sulfur‐Doped TiO2 and a Carbon Substrate Derived from Ti3C2 MXenes: Toward Highly Visible Light‐Driven Photocatalytic Hydrogen Evolution , 2018, Advanced science.
[50] Yury Gogotsi,et al. Guidelines for Synthesis and Processing of Two-Dimensional Titanium Carbide (Ti3C2Tx MXene) , 2017 .
[51] S. Adachi,et al. Solar-driven Z-scheme water splitting using tantalum/nitrogen co-doped rutile titania nanorod as an oxygen evolution photocatalyst , 2017 .
[52] M. Takeguchi,et al. A highly efficient pn junction nanocomposite solar-energy-material [nano-photovoltaic] for direct conversion of water molecules to hydrogen solar fuel , 2017 .
[53] W. Jo,et al. Z-scheme CdS/g-C3N4 composites with RGO as an electron mediator for efficient photocatalytic H2 production and pollutant degradation , 2017 .
[54] Jie Li,et al. A novel Bi2S3 nanowire @ TiO2 nanorod heterogeneous nanostructure for photoelectrochemical hydrogen generation , 2016 .
[55] Zachary D. Hood,et al. Titania Composites with 2 D Transition Metal Carbides as Photocatalysts for Hydrogen Production under Visible-Light Irradiation. , 2016, ChemSusChem.
[56] Wen Ren,et al. Brand new P-doped g-C3N4: enhanced photocatalytic activity for H2 evolution and Rhodamine B degradation under visible light , 2015 .
[57] Jinlong Zhang,et al. Enhanced photocatalytic performance of TiO2 based on synergistic effect of Ti3+ self-doping and slow light effect , 2014 .
[58] Ji-Wook Jang,et al. An exceptionally facile method to produce layered double hydroxides on a conducting substrate and their application for solar water splitting without an external bias , 2014 .
[59] Zifeng Yan,et al. Enhanced visible-light activity of F-N co-doped TiO2 nanocrystals via nonmetal impurity, Ti3+ ions and oxygen vacancies , 2013 .
[60] Nan Zhang,et al. Defective TiO2 with oxygen vacancies: synthesis, properties and photocatalytic applications. , 2013, Nanoscale.
[61] Huilin Hou,et al. Rationally designed Ti3C2 MXene@TiO2/CuInS2 Schottky/S-scheme integrated heterojunction for enhanced photocatalytic hydrogen evolution , 2022, Chemical Engineering Journal.
[62] K. Byrappa,et al. Ternary Bi2S3/MoS2/TiO2 with double Z-scheme configuration as high performance photocatalyst , 2020 .
[63] Mietek Jaroniec,et al. Heterojunction Photocatalysts , 2017, Advanced materials.