分级ZIF衍生碳/Bi12O17Cl2异质结构协同调控电子动力学与光学性能,提升纯水体系中CO2光还原性能

高韵晗 孙星 季梦夏 邱杏昌 韦天歌 徐箐 尹盛 夏杰祥 李华明

引用本文: 高韵晗, 孙星, 季梦夏, 邱杏昌, 韦天歌, 徐箐, 尹盛, 夏杰祥, 李华明. 分级ZIF衍生碳/Bi12O17Cl2异质结构协同调控电子动力学与光学性能,提升纯水体系中CO2光还原性能[J]. 物理化学学报, 2026, 42(10): 100264. doi: 10.1016/j.actphy.2026.100264 shu
Citation:  Yunhan Gao,  Xing Sun,  Mengxia Ji,  Xingchang Qiu,  Tiange Wei,  Qing Xu,  Sheng Yin,  Jiexiang Xia,  Huaming Li. Hierarchical ZIF-derived carbon/Bi12O17Cl2 heterostructures synergistically enhance electron dynamics and optical properties to boost CO2 photoreduction in pure water[J]. Acta Physico-Chimica Sinica, 2026, 42(10): 100264. doi: 10.1016/j.actphy.2026.100264 shu

分级ZIF衍生碳/Bi12O17Cl2异质结构协同调控电子动力学与光学性能,提升纯水体系中CO2光还原性能

    通讯作者: 季梦夏,E-mail:jmx@ujs.edu.cn; 夏杰祥,E-mail:xjx@ujs.edu.cn; 李华明,E-mail:lihm@ujs.edu.cn
  • 基金项目:

    本研究得到国家自然科学基金项目资助(22108108和22308128)

摘要: 传统Bi12O17Cl2光催化剂存在太阳光捕获范围窄、CO2吸附能力弱及电荷利用率低等问题。本研究通过将Bi12O17Cl2超薄纳米管嵌入分级Co-ZIF衍生多孔碳(Co-PC/BOC),构建了紧密的分级异质结结构。Co-PC纳米笼内的多重空腔反射效应与原位生成Co3O4位点的局域表面等离子体共振协同作用,使Co-PC/BOC在全光谱范围内光捕获能力显著增强。在不使用任何光敏剂或牺牲剂的纯水体系中,最优复合材料表现出34.16 μmol g-1 h-1的CO产率(100%选择性),是单体BOC的2.9倍。原位漫反射红外光谱及光电化学测试表明:Co-PC兼具等离子体热电子注入体与电荷分离中心的双重功能,而BOC为*COOH形成与*CO解离提供了丰富的表面活性位点。本工作揭示了金属有机框架及其衍生物在构建高效人工光合体系中的重要潜力。

English

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