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Tan P, Wang Z, Mao Z, Hu R, Yu J, Li Y. Highly selective conversion of NO to NO 3-through radical modulation over UiO-66-67-NH 2 S-scheme heterojunction. JOURNAL OF HAZARDOUS MATERIALS 2025; 493:138356. [PMID: 40286661 DOI: 10.1016/j.jhazmat.2025.138356] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 02/18/2025] [Revised: 04/06/2025] [Accepted: 04/19/2025] [Indexed: 04/29/2025]
Abstract
Semiconductor photocatalysis presents significant potential for reducing low concentrations of NO, yet achieving efficient and selective conversion of NO to NO3-while suppressing toxic NO2 release remains challenging. Here, a UiO-66-67-NH2 S-scheme heterojunction, synthesized by integrating UiO-66-NH2 and UiO-67-NH2, generate ·O2- as the sole active species for efficient NO to NO3-conversion under visible light. The photocatalytic performance evaluation indicates that the optimized UiO-66-67-NH2 efficiently and selectively converts NO to NO3-. The photocatalytic NO removal efficiency reaches 78 %, which is 2.2 times and 3.4 times higher than that of the individual UiO-66-NH2 and UiO-67-NH2, respectively. Experimental results and DFT calculations reveal that charge redistributions within the heterojunction creates an internal electric field, facilitating effective charge separation. The selective adsorption of O2 and NO at the Zr sites facilitates of ·O2- generation and NO enrichment, while the -NH2 sites suppress the formation of ·OH and 1O2, inhibiting NO2 release. The rate-determining step, reaction between *NO2 and *O is energetically favored in the heterojunction, accelerating NO3- formation. This study provides valuable insights into designing photocatalysts for environmental remediation by controlling reactive oxygen species and NO removal.
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Affiliation(s)
- Ping Tan
- Chongqing Key Laboratory of Catalysis and Environment materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Zhuo Wang
- Chongqing Key Laboratory of Catalysis and Environment materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Zhen Mao
- Chongqing Key Laboratory of Catalysis and Environment materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Riming Hu
- Institute for Smart Materials & Engineering, University of Jinan, Jinan, 250022, PR China.
| | - Jiayuan Yu
- Institute for Advanced Interdisciplinary Research (iAIR), School of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022, PR China.
| | - Yuhan Li
- Chongqing Key Laboratory of Catalysis and Environment materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China.
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Ma H, Huang C, Tan T, Li W, Xu W, Shen Y, Li Y, Fang R, Dong F. S-Scheme heterojunction of Cs 2SnBr 6/C 3N 4 with interfacial electron exchange toward efficient photocatalytic NO abatement. J Colloid Interface Sci 2024; 671:486-495. [PMID: 38815384 DOI: 10.1016/j.jcis.2024.05.057] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/11/2024] [Revised: 05/01/2024] [Accepted: 05/09/2024] [Indexed: 06/01/2024]
Abstract
Photocatalytic technology is of great significance in environmental purification due to its eco-friendly and cost-effective operations. However, low charge-transfer efficiency restricts the photocatalytic activity of the catalyst. Herein, we report Cs2SnBr6/C3N4 composite catalysts that exhibit a robust interfacial electron exchange thereby enhancing photocatalytic nitric oxide (NO) oxidation. A comprehensive study has demonstrated the S-scheme electron transfer mechanism. Benefiting from the interfacial internal electric field, the C-Br bond serves as a direct electron transfer channel, resulting in enhanced charge separation. Furthermore, the S-scheme heterojunction effectively traps high redox potential electrons and holes, leading to the production of abundant reactive oxygen radicals that enhance photocatalytic NO abatement. The NO removal rate of the Cs2SnBr6/C3N4 heterogeneous system can reach 86.8 %, which is approximately 3-fold and 18-fold that of pristine C3N4 and Cs2SnBr6, respectively. The comprehensive understanding of the electron transfer between heterojunction atomic interfaces will provide a novel perspective on efficient environmental photocatalysis.
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Affiliation(s)
- Hao Ma
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Chunyan Huang
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Tianqi Tan
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Wenting Li
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Wei Xu
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Yu Shen
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China
| | - Yuhan Li
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China.
| | - Ruimei Fang
- National Research Base of Intelligent Manufacturing Service, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, China.
| | - Fan Dong
- Yangtze Delta Region Institute (Huzhou), University of Electronic Science and Technology of China, Huzhou 313000, China; State Centre for International Cooperation on Designer Low Carbon and Environmental Materials (CDLCEM), School of Materials Science and Engineering, Zhengzhou University, Zhengzhou 450001, China.
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Qi K, Lu Z, Gao X, Tan G, Zhang Z, Liu D, Dong G, Jing D, Luo P. Enhancing Surface Hydroxyl Group Modulation on Carbon Nitride Boosts the Effectiveness of Photodynamic Treatment for Brain Glioma. ACS APPLIED MATERIALS & INTERFACES 2024; 16:29793-29804. [PMID: 38819663 DOI: 10.1021/acsami.4c03894] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Subscribe] [Scholar Register] [Indexed: 06/01/2024]
Abstract
The effectiveness of photodynamic therapy (PDT) in treating brain gliomas is limited by the solubility of photosensitizers and the production of reactive oxygen species (ROS), both of which are influenced by the concentration of photosensitizers and catalyst active sites. In this study, we developed a controllable surface hydroxyl concentration for the photosensitizer CN11 to address its poor water solubility issue and enhance PDT efficacy in tumor treatment. Compared to pure g-C3N4 (CN), CN11 exhibited 4.6 times higher hydrogen peroxide production under visible light, increased incidence of the n → π* electron transition, and provided more available reaction sites for cytotoxic ROS generation. These findings resulted in a 2.43-fold increase in photodynamic treatment efficacy against brain glioma cells. Furthermore, in vivo experiments conducted on mice demonstrated that CN11 could be excreted through normal cell metabolism with low cytotoxicity and high biosafety, effectively achieving complete eradication of tumor cells.
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Affiliation(s)
- Kai Qi
- Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, School of Materials Science and Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China
- Department of Neurosurgery, Xijing Hospital, Fourth Military Medical University, Xi'an 710032, China
- Department of Biomedical Engineering, Fourth Military Medical University, Xi'an 710032, China
| | - Zihan Lu
- College of Life Sciences, Northwest University, Xi'an 710069, China
| | - Xiangyu Gao
- Department of Neurosurgery, Xijing Hospital, Fourth Military Medical University, Xi'an 710032, China
| | - Guoqiang Tan
- Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, School of Materials Science and Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China
| | - Zhuoyuan Zhang
- College of Life Sciences, Northwest University, Xi'an 710069, China
| | - Dan Liu
- College of Life Sciences, Northwest University, Xi'an 710069, China
| | - Guohui Dong
- Shaanxi Key Laboratory of Green Preparation and Functionalization for Inorganic Materials, School of Materials Science and Engineering, Shaanxi University of Science and Technology, Xi'an 710021, China
| | - Da Jing
- Department of Biomedical Engineering, Fourth Military Medical University, Xi'an 710032, China
| | - Peng Luo
- Department of Neurosurgery, Xijing Hospital, Fourth Military Medical University, Xi'an 710032, China
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Tan P, Mao Z, Li Y, Yu J, Long L. Boosting photocatalytic NO oxidation mediated by high redox charge carriers from visible light-driven C 3N 4/UiO-67 S-scheme heterojunction photocatalyst. J Colloid Interface Sci 2024; 663:992-1004. [PMID: 38452548 DOI: 10.1016/j.jcis.2024.02.221] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/11/2023] [Revised: 02/13/2024] [Accepted: 02/29/2024] [Indexed: 03/09/2024]
Abstract
The construction of CN/UiO-67 (CNU) S-scheme heterojunction composites through in situ formation of UiO-67 on carbon nitride (C3N4) helps to address the limitations of carbon nitride (CN) in photocatalytic NO elimination. The optimized CNU3 demonstrates superior photocatalytic efficiency, which is attributed to electronic channels constructed by Zr-N bonds and S-scheme electron transport mechanism, effectively promoting the efficient separation of photogenerated charge carriers with high redox potentials. Density Functional Theory (DFT) calculations reveal redistributed electronic orbitals in CNU3, with progressive and continuous energy levels near the Fermi level, which bolsters electronic conduction. Comprehensive quenching experiments, Electron Paramagnetic Resonance (EPR), and in situ Diffuse Reflectance Infrared Fourier Transform Spectroscopy (DRIFTS) analyses highlight a synergistic interplay of electrons, holes, and superoxide radicals in CNU3, inhibiting the generation of toxic nitrogen oxide intermediates and culminating in highly efficient photocatalytic NO oxidation. This study not only elucidates the mechanisms underpinning the enhanced performance of CNU3 heterojunctions but also offers new perspectives on the preparation and interfacial charge separation of heterojunction photocatalysts.
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Affiliation(s)
- Ping Tan
- Chongqing Key Laboratory of Catalysis and Environment Materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, PR China
| | - Zhen Mao
- Chongqing Key Laboratory of Catalysis and Environment Materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, PR China
| | - Yuhan Li
- Chongqing Key Laboratory of Catalysis and Environment Materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, PR China.
| | - Jiayuan Yu
- Institute for Advanced Interdisciplinary Research (iAIR), School of Chemistry and Chemical Engineering, University of Jinan, Jinan, 250022, PR China.
| | - Liangjun Long
- Chongqing Key Laboratory of Catalysis and Environment Materials, College of Environment and Resources, Engineering Research Center for Waste Oil Recovery Technology and Equipment, Ministry of Education, Chongqing Technology and Business University, Chongqing 400067, PR China
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Huang Q, Fu C, Shen Y, Wang H, Wu Z, Liang Z, Tian C, Wu D, Qi F, Pu Y, Zhang N, Wang M, Tang X. Boosting CO 2 Conversion by Synergy of Lead-Free Perovskite Cs 2SnCl 6 and Plasma with H 2O. J Phys Chem Lett 2023; 14:8922-8929. [PMID: 37768142 DOI: 10.1021/acs.jpclett.3c01696] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 09/29/2023]
Abstract
Although dielectric barrier discharge (DBD) plasma is a promising technique for CO2 conversion, realizing CO2-to-alcohol is still challenging via the use of H2O. Herein, for the first time, efficient CO2 conversion was achieved via the synergism between the Cs2SnCl6 photocatalyst and DBD plasma assisted by H2O. The CO2 conversion ratio of plasma photocatalysis was 6.5% higher than that of only the plasma and photocatalysis, implying that the synergism of plasma catalysis and photocatalysis was achieved. Furthermore, the DBD plasma assisted by the Cs2SnCl6 photocatalyst could convert CO2 and H2O to CO and a small amount of methanol and ethanol. The CO2 conversion ratio was enhanced by 50.6% in the presence of H2O, which was attributed to the improvement of charge transfer due to the increased electrical conductivity of the photocatalyst surface during plasma discharge. This work provides a new idea for developing an efficient system for CO2 utilization.
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Affiliation(s)
- Qiang Huang
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Chengfan Fu
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Yangyi Shen
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Haowen Wang
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Zhengben Wu
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Zhiyu Liang
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Changqing Tian
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Daofu Wu
- Key Laboratory of Optoelectronic Technology & Systems, Ministry of Education, Chongqing University, Chongqing 400044, China
| | - Fei Qi
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Yayun Pu
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Nan Zhang
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Manjing Wang
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
| | - Xiaosheng Tang
- School of Optoelectronic Engineering, Chongqing University of Posts and Telecommunications, Chongqing 400065, China
- Key Laboratory of Optoelectronic Technology & Systems, Ministry of Education, Chongqing University, Chongqing 400044, China
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Zhang J, Li Z, Li J, He Y, Tong H, Li S, Chai Z, Lan K. Construction of Type-II Heterojunctions in Crystalline Carbon Nitride for Efficient Photocatalytic H 2 Evolution. NANOMATERIALS (BASEL, SWITZERLAND) 2023; 13:2300. [PMID: 37630886 PMCID: PMC10459030 DOI: 10.3390/nano13162300] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Subscribe] [Scholar Register] [Received: 07/15/2023] [Revised: 08/01/2023] [Accepted: 08/01/2023] [Indexed: 08/27/2023]
Abstract
As an encouraging photocatalyst, crystalline carbon nitride (CCN) exhibits unsatisfactory photocatalytic activity and stability due to its rapid recombination of photo-generative carriers. Herein, high-crystalline g-C3N4 was prepared, including CCN obtained in KCl (K-CCN), LiCl-KCl mixture (Li/K-CCN), and LiCl-NaCl-KCl mixture (Li/Na/K-CCN), via the molten salt strategy using pre-prepared bulk carbon nitride (BCN) as a precursor. The obtained BCN sample was formed by heptazine-based units, which convert into triazine-based units for K-CCN. Heptazine and triazine are two isotypes that co-exist in the Li/K-CCN and Li/Na/K-CCN samples. Compared with BCN and other CCN samples, the as-prepared Li/Na/K-CCN sample exhibited the optimal photocatalytic hydrogen evolution rates (3.38 mmol·g-1·h-1 under simulated sunlight and 2.25 mmol·g-1·h-1 under visible light) and the highest apparent quantum yield (10.97%). The improved photocatalytic performance of the Li/Na/K-CCN sample is mainly attributed to the construction of type-II heterojunction and the institution of the built-in electric field between triazine-based CCN and heptazine-based BCN. This work provides a new strategy for the structural optimization and heterostructure construction of crystalline carbon nitride photocatalysts.
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Affiliation(s)
| | | | | | | | | | | | - Zhanli Chai
- Inner Mongolia Key Laboratory of Chemistry and Physics of Rare Earth Materials, College of Chemistry and Chemical Engineering, College of Energy Materials and Chemistry, Inner Mongolia University, Hohhot 010021, China
| | - Kun Lan
- Inner Mongolia Key Laboratory of Chemistry and Physics of Rare Earth Materials, College of Chemistry and Chemical Engineering, College of Energy Materials and Chemistry, Inner Mongolia University, Hohhot 010021, China
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Pan J, Guan Y, Zhang Y, Xu Z, Han S, Tang H, Yan X, Liu H, Lu Q. Near-Infrared-Induced Photothermal Enhanced Photocatalytic H 2 Production for 3D/2D Heterojunctions of Snowflake-like CuS/g-C 3N 4 Nanosheets. Inorg Chem 2023; 62:624-635. [PMID: 36571242 DOI: 10.1021/acs.inorgchem.2c04000] [Citation(s) in RCA: 6] [Impact Index Per Article: 3.0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/27/2022]
Abstract
The conversion of solar power to hydrogen (H2) energy efficiently encounters some obstacles due to the lack of superior catalysts and efficient catalytic approaches. Herein, three-dimensional/two-dimensional (3D/2D) CuS/g-C3N4 photothermal catalysts were obtained via an easy, one-step hydrothermal method after pyrolysis. The favorable heterojunction interface for H2 production was constructed by snowflake-like CuS embedded in the graphite carbon nitride (g-C3N4) nanosheets, leading to the acceleration of charge transfer and separation, decrease of charge transfer distance, and perfect realization of photothermal effects (PTEs) induced by near-infrared (NIR) light. The 3D/2D CuS/g-C3N4 catalyst presents a topmost H2-production rate (1422 μmol h-1 g-1) under dual wavelength (420 + 850 nm) and a moderate H2-production rate under 420 nm, which are 12-fold and 9-fold higher than pure g-C3N4, respectively, owing to a strong action from PTEs induced by NIR. The feasible NIR-enhanced photothermal catalysis is expected to apply in multifarious heat-assisted photocatalysis processes by designing multifunctional composites with super PTE and photocatalytic capacity.
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Affiliation(s)
- Jianmei Pan
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Yi Guan
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Yahai Zhang
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Ziwei Xu
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Shuai Han
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Hua Tang
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China.,School of Environmental Science and Engineering, Qingdao University, Qingdao266071, PR China
| | - Xuehua Yan
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Hu Liu
- School of Materials Science and Engineering, Jiangsu University, Zhenjiang212013, P. R. China
| | - Qingbo Lu
- School of Energy and Power Engineering, Jiangsu University, Zhenjiang212013, P. R. China
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