Insights into the Role of C-S-C Bond in C3N5 for Photocatalytic NO Deep Oxidation: Experimental and DFT Exploration
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[1] Yinzhen Wang,et al. Diethylenetriamine-CdS hybrid materials (CdS-DETA) loaded nitrogen-rich carbon nitride (g-C3N5) for enhanced hydrogen production and photocatalytic degradation: Enhancement based on band bending , 2023, Separation and Purification Technology.
[2] Yingtang Zhou,et al. Reinforced Photogenerated Electrons in Few-Layer C3N5 for Enhanced Catalytic NO Oxidation and CO2 Reduction , 2022, ACS Catalysis.
[3] Yanjuan Sun,et al. Photo-Switchable Oxygen Vacancy as the Dynamic Active Site in the Photocatalytic NO Oxidation Reaction , 2022, ACS Catalysis.
[4] Shulan Wang,et al. A Crystalline Carbon Nitride Based Near‐Infrared Active Photocatalyst , 2022, Advanced Functional Materials.
[5]
Min Shi,et al.
A novel bionic flower-like Z-scheme Bi4O5I2/g-C3N5 heterojunction with
[6] Jyh‐Chiang Jiang,et al. Unraveling the Effects of P and S Doping Over G-C3n4 in Strengthening Lewis Basicity for Co2/Glycerol Conversion: A Theoretical and Experimental Study , 2022, SSRN Electronic Journal.
[7] S. Ogale,et al. Construction of a 2D/2D g-C3N5/NiCr-LDH Heterostructure to Boost the Green Ammonia Production Rate under Visible Light Illumination. , 2022, ACS applied materials & interfaces.
[8] Chunfang Tang,et al. In Situ Coupling Carbon Defective C3N5 Nanosheet with Ag2CO3 for Effective Degradation of Methylene Blue and Tetracycline Hydrochloride , 2022, Nanomaterials.
[9] T. Peng,et al. Construction of rGO-coupled C3N4/C3N5 2D/2D Z-scheme heterojunction to accelerate charge separation for efficient visible light H2 evolution , 2022, Applied Catalysis B: Environmental.
[10] Y. Ao,et al. Regulating directional transfer of electrons on polymeric g-C3N5 for highly efficient photocatalytic H2O2 production. , 2022, Journal of colloid and interface science.
[11] S. Rajendran,et al. Facile synthesis of broom stick like FeOCl/g-C3N5 nanocomposite as novel Z-scheme photocatalysts for rapid degradation of pollutants. , 2022, Chemosphere.
[12] Wei Shi,et al. Modulation of Z-Scheme Heterojunction Interface between Ultrathin C3N5 Nanosheets and Metal-Organic Framework for Boosting Photocatalysis. , 2022, ACS applied materials & interfaces.
[13] Shijie Li,et al. Designing oxygen vacancy mediated bismuth molybdate (Bi2MoO6)/N-rich carbon nitride (C3N5) S-scheme heterojunctions for boosted photocatalytic removal of tetracycline antibiotic and Cr(VI): Intermediate toxicity and mechanism insight. , 2022, Journal of colloid and interface science.
[14] Hao Chen,et al. Construction of Highly Dispersed Ni Sites on N‐rich Carbon Nitride for Enhanced Photocatalytic NO Removal , 2022, Advanced Sustainable Systems.
[15] S. Ogale,et al. Visible Light-Driven Highly Selective CO2 Reduction to CH4 Using Potassium-Doped g-C3N5. , 2022, Langmuir : the ACS journal of surfaces and colloids.
[16] Xiaohu Zhang,et al. Construction of oxygen vacancy on Bi12O17Cl2 nanosheets by heat-treatment in H2O vapor for photocatalytic NO oxidation , 2022, Journal of Materials Science & Technology.
[17] Zhen Chen,et al. Efficient Electron Transfer by Plasmonic Silver in SrTiO3 for Low-Concentration Photocatalytic NO Oxidation. , 2022, Environmental science & technology.
[18] J. Ho,et al. NiMo@C3N5 Heterostructures with Multiple Electronic Transmission Channels for Highly Efficient Hydrogen Evolution from Alkaline Electrolytes and Seawater , 2022, Chemical Engineering Journal.
[19] Wei Cai,et al. Boron doped C3N5 for photocatalytic nitrogen fixation to ammonia: the key role of boron in nitrogen activation and mechanism , 2022, Chemical Engineering Journal.
[20] Xuesu Xiao,et al. Insight into the Enhanced Degradation Mechanism of g-C3N4/g-C3N5 Heterostructures through Photocatalytic Molecular Oxygen Activation in Van der Waals Junction and Excitation , 2022, Journal of Alloys and Compounds.
[21] Yining Huang,et al. Type-II surface heterojunction of bismuth-rich Bi4O5Br2 on nitrogen-rich g-C3N5 nanosheets for efficient photocatalytic degradation of antibiotics , 2022, Separation and Purification Technology.
[22] Tao Duan,et al. Three-dimensional C3N5/RGO aerogels with enhanced visible-light response and electron-hole separation efficiency for photocatalytic uranium reduction , 2022 .
[23] Qi Li,et al. Hollow carbon nanospheres@graphitic C3N5 heterostructures for enhanced oxygen electroreduction , 2021, Applied Surface Science.
[24] Zhouping Wang,et al. An all-organic 0D/2D supramolecular porphyrin/g-C3N4 heterojunction assembled via π-π interaction for efficient visible photocatalytic oxidation , 2021 .
[25] Tao Duan,et al. Metal-free 2D/2D C3N5/GO nanosheets with customized energy-level structure for radioactive nuclear wastewater treatment. , 2021, Journal of hazardous materials.
[26] Shaobin Wang,et al. Experimental and DFT insights into the visible-light driving metal-free C3N5 activated persulfate system for efficient water purification , 2021, Applied Catalysis B: Environmental.
[27] Yu-Hsaun Lin,et al. Influence of Phosphorus Doping on Triazole-Based g-C3N5 Nanosheets for Enhanced Photoelectrochemical and Photocatalytic Performance. , 2021, ACS applied materials & interfaces.
[28] Yuxin Zhang,et al. Motivated surface reaction thermodynamics on the bismuth oxyhalides with lattice strain for enhanced photocatalytic NO oxidation , 2021 .
[29] M. Abdellah,et al. Visible-light-driven hydrogen evolution using nitrogen-doped carbon quantum dot-implanted polymer dots as metal-free photocatalysts , 2021, Applied Catalysis B: Environmental.
[30] Shuquan Huang,et al. Sulfur promoted n-π* electron transitions in thiophene-doped g-C3N4 for enhanced photocatalytic activity , 2021, Chinese Journal of Catalysis.
[31] F. D’Souza,et al. Unveiling the photoinduced electron-donating character of MoS2 in covalently linked hybrids featuring perylenediimide. , 2021, Angewandte Chemie.
[32] Jiajia Wang,et al. A novel sulfur-assisted annealing method of g-C3N4 nanosheet compensates for the loss of light absorption with further promoted charge transfer for photocatalytic production of H2 and H2O2 , 2021 .
[33] Shen-ming Chen,et al. In situ synthesis of Ag3PO4/C3N5Z-scheme heterojunctions with enhanced visible-light-responsive photocatalytic performance for antibiotics removal. , 2021, The Science of the total environment.
[34] Xiaobo Chen,et al. In-Situ Constructing C3n5 Nanosheets/Bi2wo6 Nanodots S-Scheme Heterojunction with Enhanced Structural Defects for Efficiently Photocatalytic Removal of Tetracycline and Cr(Vi) , 2021, SSRN Electronic Journal.
[35] 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 .
[36] Jian Yang,et al. Heterojunction interface of zinc oxide and zinc sulfide promoting reactive molecules activation and carrier separation toward efficient photocatalysis. , 2020, Journal of colloid and interface science.
[37] Xianzhi Fu,et al. LaOCl-coupled polymeric carbon nitride for overall water splitting through a one-photon excitation pathway. , 2020, Angewandte Chemie.
[38] T. Rabczuk,et al. Nanoporous C3N4, C3N5 and C3N6 nanosheets; novel strong semiconductors with low thermal conductivities and appealing optical/electronic properties , 2020, 2006.03889.
[39] Tianyu Liu,et al. Preparation of C3N5 nanosheets with enhanced performance in photocatalytic methylene blue (MB) degradation and H2-evolution from water splitting. , 2020, Environmental research.
[40] Bappi Paul,et al. Highly active novel CeTi2O6/g-C3N5 photocatalyst with extended spectral response towards removal of endocrine disruptor 2, 4-dichlorophenol in aqueous medium , 2020 .
[41] Yuxin Zhang,et al. Facile construction of Bi2Mo3O12@Bi2O2CO3 heterojunctions for enhanced photocatalytic efficiency toward NO removal and study of the conversion process , 2020 .
[42] Bappi Paul,et al. Synthesis of novel AgCl loaded g-C3N5 with ultrahigh activity as visible light photocatalyst for pollutants degradation , 2020 .
[43] Yuxin Zhang,et al. Constructing defective (BiO)2CO3 with different dominated facets for efficiently photocatalytic NO oxidization and in situ reaction pathway study , 2019 .
[44] M. Antonietti,et al. Electron Deficient Monomers that Optimize Nucleation and Enhance the Photocatalytic Redox Activity of Carbon Nitrides , 2019, Angewandte Chemie.
[45] Youyong Li,et al. Unveiling the origin of boosted photocatalytic hydrogen evolution in simultaneously (S, P, O)-Codoped and exfoliated ultrathin g-C3N4 nanosheets , 2019, Applied Catalysis B: Environmental.
[46] Pawan Kumar,et al. C3N5: A Low Bandgap Semiconductor Containing an Azo-Linked Carbon Nitride Framework for Photocatalytic, Photovoltaic and Adsorbent Applications. , 2019, Journal of the American Chemical Society.
[47] S. Yao,et al. A Mesoporous Rod-like g-C3N5 Synthesized by Salt-Guided Strategy: As a Superior Photocatalyst for Degradation of Organic Pollutant , 2018, ACS Sustainable Chemistry & Engineering.
[48] T. Majima,et al. Z-Scheme Photocatalytic Water Splitting on a 2D Heterostructure of Black Phosphorus/Bismuth Vanadate Using Visible Light. , 2018, Angewandte Chemie.
[49] G. Zeng,et al. Doping of graphitic carbon nitride for photocatalysis: A reveiw , 2017 .
[50] Dae-Hwan Park,et al. Highly Ordered Nitrogen-Rich Mesoporous Carbon Nitrides and Their Superior Performance for Sensing and Photocatalytic Hydrogen Generation. , 2017, Angewandte Chemie.
[51] Zhen Ma,et al. Ag6Mo10O33/g-C3N4 1D-2D hybridized heterojunction as an efficient visible-light-driven photocatalyst , 2017 .
[52] Ruiyu Li,et al. Charge carrier kinetics of carbon nitride colloid: a femtosecond transient absorption spectroscopy study. , 2016, Physical chemistry chemical physics : PCCP.
[53] I. Parkin,et al. Where Do Photogenerated Holes Go in Anatase:Rutile TiO2? A Transient Absorption Spectroscopy Study of Charge Transfer and Lifetime. , 2016, The journal of physical chemistry. A.
[54] Jiaguo Yu,et al. Sulfur-doped g-C3N4 with enhanced photocatalytic CO2-reduction performance , 2015 .
[55] Hui-Ming Cheng,et al. Unique electronic structure induced high photoreactivity of sulfur-doped graphitic C3N4. , 2010, Journal of the American Chemical Society.