Chinese Journal of Catalysis ›› 2026, Vol. 84: 288-300.DOI: 10.1016/S1872-2067(26)64990-X
• Articles • Previous Articles Next Articles
Jingyao Wua,b, Yujing Lva,b, Qiang Zhaoa,b, Shuo Wanga,b, Ying Wanga,b(
), Na Wenc, Zhengxin Dinga,b, Zizhong Zhanga,b, Jinlin Longa,b(
)
Received:2025-08-06
Accepted:2025-11-12
Online:2026-05-18
Published:2026-04-16
Contact:
*E-mail: ywang@fzu.edu.cn (Y. Wang),Supported by:Jingyao Wu, Yujing Lv, Qiang Zhao, Shuo Wang, Ying Wang, Na Wen, Zhengxin Ding, Zizhong Zhang, Jinlin Long. Electron-proton duet in covalent organic frameworks for efficient direct oxygen reduction to hydrogen peroxide[J]. Chinese Journal of Catalysis, 2026, 84: 288-300.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.cjcatal.com/EN/10.1016/S1872-2067(26)64990-X
Fig. 1. PXRD maps of TPNN-COF (a), TPNB-COF (b) and TPBN-COF (c). (d) FT-IR spectra of TPNN-COF, TPNB-COF and TPBN-COF and the related monomers. (e) 13C NMR spectra of TPNN-COF, TPNB-COF and TPBN-COF. (f) XPS patterns of TPNN-COF, TPNB-COF and TPBN-COF. N2 adsorption-desorption isotherms of TPNN-COF (g), TPNB-COF (h) and TPBN-COF (i). (Inset in (g-i) are the pore size distribution).
Fig. 2. (a) Solid state UV-vis DRS spectra of three COFs. (b) Optical band gaps calculated in Tauc plot. (c) Mott-Schottky plots for TPNN-COF. (d) Energy band structures of TPNN-COF, TPNB-COF, and TPBN-COF. (The formula for calculating the valence band position is EVB = ECB + Eg) (f) Photocatalytic H2O2 production activities of TPNN-COF, TPNB-COF and TPBN-COF. (g) Photocatalytic H2O2 production yields of other COF materials under identical experimental conditions. (h) AQY of TPNN-COF at different wavelengths. (i) Cycling tests of TPNN-COF.
Fig. 3. Electrochemical impedance spectra of TPNN-COF (a), TPNB-COF (b) and TPBN-COF (c) at the same humidity, different temperatures. (d) Proton conductivity of TPNN-COF, TPNB-COF and TPBN-COF in aqueous solution at 293.15 to 333.15 K. (e) Proton transfer activation energies of TPNN-COF, TPNB-COF and TPBN-COF. (f) Proton binding energy maps of TPNN-COF at carbonyl oxygen, pyridine nitrogen, and triazinyl nitrogen. Hydrophilicity test of TPNN-COF (g), TPNB-COF (h), TPBN-COF (i).
Fig. 4. KPFM images of TPNN-COF (a), TPNB-COF (b) and TPBN-COF (c) in the dark and under 420 nm visible light irradiation and the corresponding surface potential distributions. two-dimensional fs-TAS spectra of TPNN-COF (d), TPNB-COF (e), and TPBN-COF (f). two-dimensional fs-TAS spectra of TPNN-COF (g), TPNB-COF (h), and TPBN-COF (i) fs-TAS kinetic curves at the indicated wavelengths.
Fig. 5. (a) Photocatalytic H2O2 activity of TPNN-COF, TPNB-COF and TPBN-COF under different atmospheres and sacrificers. (b) EPR profiles of the three COFs in the dark and in the light. (c) Koutecky-Levich plots of three COFs in PBS (pH = 7) solution. In situ DRIFTS spectra of TPNN-COF (d), TPNB-COF (e), and TPBN-COF (f) versus illumination time. (g) Gibbs free energy diagram of three COFs with direct O2 adsorption. (h) Gibbs free energy plot of three COFs with protons adsorbed first. (“*” represents COF adsorption sites. The illustration shows the optimal intermediate product of TPNN-COF.)
|
| [1] | Yi-Wen Han, Run-Yu Liu, Yu-Xin Zhang, Lei Ye, Phuc T. T. Nguyen, Tian-Jun Gong, Xue-Bin Lu, Yao Fu, Ning Yan. Establishing built-in electric field within single-atom-anchored hollow architectures for efficient solar-thermal regulation in plastic photoreforming [J]. Chinese Journal of Catalysis, 2026, 84(5): 301-313. |
| [2] | Ran Sun, Yuqi Zhang, Kunge Hou, Yujie Tan, Xingang Liu, Jianyuan Hou, Weixuan Zhao, Andrew E. H. Wheatley, Renxi Zhang. Designing hydrogen-bonds in covalent organic frameworks: accelerating proton-coupled electron transfer for enhanced photocatalytic H2O2 synthesis [J]. Chinese Journal of Catalysis, 2026, 84(5): 274-287. |
| [3] | Zhiyao Liu, Tangkang Liu, Chuan Qin, Guoliang Liu, Anmin Zheng. Zirconia-mediated interfacial catalysis for CO2 hydrogenation [J]. Chinese Journal of Catalysis, 2026, 84(5): 1-24. |
| [4] | Yu Gu, Shujia Zhang, Minglu Xu, Hao Yan, Minghao Zhou, Lei Wang, Hui Shi. Dehydroaromatization of methane and methane co-aromatization process with propane: Reaction mechanism, catalyst design, carbon deposition and process optimization [J]. Chinese Journal of Catalysis, 2026, 84(5): 25-60. |
| [5] | Haifeng Fan, Di Xu, Ting Zeng, Guoqiang Hou, Yangyang Li, Siyi Huang, Yanfei Xu, Zheng Wang, Xinhua Gao, Xiang-Kui Gu, Mingyue Ding. Highly efficient electron-enriched Y2O3‒x-Ni interfaces boosting low-temperature CO2 methanation [J]. Chinese Journal of Catalysis, 2026, 84(5): 200-213. |
| [6] | Ke-Hui Xie, Cong-Xue Liu, Yan Geng, Jing-Lan Kan, Guang-Bo Wang, Yu-Bin Dong. Efficient H2O2 photosynthesis through linker engineering of benzotrithiophene-based covalent organic frameworks [J]. Chinese Journal of Catalysis, 2026, 83(4): 271-281. |
| [7] | Jinhe Li, Xiaxi Yao, Xiaohui Yu, Xiaosong Zhou, Wei Ren, Lele Wang, Weikang Wang, Qinqin Liu. Simultaneous value-added utilization of photogenerated electrons and holes via plasmon-exciton-phonon synergy in Mo2N QDs/ZnIn2S4 heterojunction [J]. Chinese Journal of Catalysis, 2026, 83(4): 219-230. |
| [8] | R. Kavitha, C. Manjunatha, S. Girish Kumar. ZnO-based S-scheme heterojunction: Design principles, preparation methods and photocatalytic activity [J]. Chinese Journal of Catalysis, 2026, 83(4): 54-95. |
| [9] | Sixian Li, Youyu Duan, Xinyuan Liang, Yuhan Li, Dieqing Zhang. Decoding the atomic architecture of photocatalytic active sites: From precise identification to rational design principles [J]. Chinese Journal of Catalysis, 2026, 83(4): 1-23. |
| [10] | Keshan Tang, Wanyi Deng, Ningyuan Wang, Yang Xia, Xinhe Wu, Heng Yang. Triazine-based COF/TiO2 S-scheme heterojunction with oxygen vacancies for efficient photocatalytic CO2 reduction [J]. Chinese Journal of Catalysis, 2026, 83(4): 244-257. |
| [11] | Kaiqiang Xu, Wenjun Zhu, Mahmoud Sayed, Sheng Han. Design and preparation of 1D-based S-scheme photocatalysts [J]. Chinese Journal of Catalysis, 2026, 83(4): 24-53. |
| [12] | Donghua Li, Hongyin Hu, Jinye Zhou, Hanyun Miao, Yu Wu, Jinyan Wang, Baochun Guo, Mingliang Du, Shuanglong Lu. Steering product selectivity via metallic site-dependent pathways in porphyrin-based covalent organic frameworks for electrocatalytic nitrite reduction [J]. Chinese Journal of Catalysis, 2026, 83(4): 258-270. |
| [13] | Yixin Li, Jianhao Qiu, Guanglu Xia, Qiying Liu, Biyao Fang, Meng Liu, Chen Chen, Jianfeng Yao. Hollow tubular In2O3 modified carbon nitride for photocatalytic high-yield cleavage of lignin C-C bonds under 395 nm light [J]. Chinese Journal of Catalysis, 2026, 83(4): 209-218. |
| [14] | Wenao Xie, Zhifang Jia, Chang Shu, Tingxia Wang, Jianhong Xi, Jiaxuan Cai, Xiangyang Song, Yu Che, Xiaoyan Wang, Kewei Wang, Bien Tan. Cyano-functionalized covalent organic frameworks for enhanced photocatalytic hydrogen peroxide production via microenvironment engineering [J]. Chinese Journal of Catalysis, 2026, 83(4): 282-293. |
| [15] | Peng Liu, Lian Duan, Baopeng Yang, Mingwei Sun, Gen Chen, Xiaohe Liu, Min Liu, Ning Zhang. Tuning surface electronic structure of (CuGa)xZn1‒2xGa2S4 photocatalyst for efficient nitrate-to-ammonia conversion [J]. Chinese Journal of Catalysis, 2026, 83(4): 172-182. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||