光催化
材料科学
甲烷
催化作用
锐钛矿
表面工程
化学工程
联轴节(管道)
电场
动力学
量子效率
载流子
光化学
化学物理
工作(物理)
纳米技术
量子点
电子
激进的
甲烷厌氧氧化
化学动力学
多相催化
降级(电信)
化学反应工程
反应机理
科技与社会
二氧化钛
反应速率
表面改性
偶联反应
作者
Haihua Zeng,Xiaoyu Sui,Pu Zhang,Ying Wang,Zizhong Zhang,Rusheng Yuan,Zhengxin Ding,Yanhui Ao,Bindong Li,Haowei Huang,Jinlin Long
摘要
ABSTRACT ZnO‐based photocatalysts have attracted extensive attention for methane (CH 4 ) conversion because their intrinsic internal electric field can effectively polarize and activate CH 4 . However, the mismatch between charge‐carrier dynamics and surface reaction kinetics limits the utilization of photogenerated reactive species, making noble‐metal modification necessary to achieve efficient methane conversion. In this study, we report a noble‐metal‐free single‐atom photocatalyst in which isolated Zn atoms are anchored onto anatase TiO 2 via µ‐oxo bridges (Zn─O─TiO 2 ) for photocatalytic non‐oxidative coupling of methane (NOCM). This structure not only promotes efficient charge separation and suppresses carrier recombination, enabling the formation of long‐lived Zn + and O − reaction centers, but also provides active sites to accelerate surface reaction kinetics. Consequently, the catalyst achieves an ethane rate of 44.75 µmol·g −1 ·h −1 in a batch reactor, and 1.09 mmol·g −1 ·h −1 in a flow reactor. The apparent quantum efficiency reaches 8.81% at 350 nm. Mechanistic studies reveal that photogenerated holes at O − centers activate CH 4 to CH 3 radicals, while electrons at Zn + sites drive H 2 evolution, synergistically enabling efficient NOCM. This work establishes single‐atom interface engineering as an effective strategy for simultaneously promoting charge separation and enhancing surface catalytic reaction, providing a general strategy for designing noble‐metal‐free photocatalysts for small‐molecule activation.
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