TY - JOUR
T1 - Photosynthesis of H2O2 using Phenothiazine-Based Covalent-Organic Frameworks Mimicking Coenzyme Q
AU - Peng, Yaoyao
AU - Yuan, Lewang
AU - Liu, Kang Kai
AU - Guan, Zong Jie
AU - Jin, Shangbin
AU - Fang, Yu
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2025/3/17
Y1 - 2025/3/17
N2 - Mimicking natural enzymes through artificial enzyme engineering represents a powerful strategy to fine-tune the performance of photocatalysts, while the manipulation of electron transfer systems through atomic precision control is challenging. Herein, we reported a series of covalent organic frameworks (COFs) based on progressively oxidized phenothiazine (PTH) core as the platform for emulating Coenzyme Q, achieved through meticulous stepwise adjustments of their redox states. Compared to the original PTH-S-COF, the COFs with incrementally oxidized sulfur sites exhibited enhanced charge transfer efficiencies, facilitating efficient electron donation to O2 and thereby providing a favorable pathway for H2O2 synthesis. Notably, the PTH-SO2-COF achieved a remarkable synthesis rate of 7755 μmol g−1 h−1, marking a 720 % improvement over the PTH-S-COF baseline. Furthermore, upon adjusting the sacrificial agent ratio, this rate soared to an impressive 13565 μmol g−1 h−1, surpassing the most reported photo-active COFs. In situ characterizations and simulations verified that three H2O2 evolution pathways (2e− ORR, 4e− OER, and 4e− ORR) all involved in the H2O2 production process. As a result, our findings introduce a novel pathway for the development of high-performance COF-based photocatalysts through the innovative application of artificial enzyme-mimicking techniques.
AB - Mimicking natural enzymes through artificial enzyme engineering represents a powerful strategy to fine-tune the performance of photocatalysts, while the manipulation of electron transfer systems through atomic precision control is challenging. Herein, we reported a series of covalent organic frameworks (COFs) based on progressively oxidized phenothiazine (PTH) core as the platform for emulating Coenzyme Q, achieved through meticulous stepwise adjustments of their redox states. Compared to the original PTH-S-COF, the COFs with incrementally oxidized sulfur sites exhibited enhanced charge transfer efficiencies, facilitating efficient electron donation to O2 and thereby providing a favorable pathway for H2O2 synthesis. Notably, the PTH-SO2-COF achieved a remarkable synthesis rate of 7755 μmol g−1 h−1, marking a 720 % improvement over the PTH-S-COF baseline. Furthermore, upon adjusting the sacrificial agent ratio, this rate soared to an impressive 13565 μmol g−1 h−1, surpassing the most reported photo-active COFs. In situ characterizations and simulations verified that three H2O2 evolution pathways (2e− ORR, 4e− OER, and 4e− ORR) all involved in the H2O2 production process. As a result, our findings introduce a novel pathway for the development of high-performance COF-based photocatalysts through the innovative application of artificial enzyme-mimicking techniques.
KW - covalent-organic frameworks
KW - electron transfer
KW - enzyme mimicking
KW - hydrogen peroxide
KW - photocatalysis
UR - https://www.scopus.com/pages/publications/105001063691
U2 - 10.1002/anie.202423055
DO - 10.1002/anie.202423055
M3 - 文章
C2 - 39714409
AN - SCOPUS:105001063691
SN - 1433-7851
VL - 64
JO - Angewandte Chemie - International Edition
JF - Angewandte Chemie - International Edition
IS - 12
M1 - e202423055
ER -