物理化学学报

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Auδ+-Au界面工程调控TpPa COFs实现高效光催化H2O2生成

孙方龙1, 田俊豪2, 张洪文2, 匡少平1, 唐华2   

  1. 1 青岛科技大学环境与安全工程学院, 山东 青岛 266000;
    2 青岛大学环境与地理科学学院, 山东 青岛 266071
  • 收稿日期:2026-06-30 修回日期:2026-07-25 录用日期:2026-07-26
  • 通讯作者: 张洪文, 匡少平, 唐华 E-mail:zhanghongwen@qdu.edu.cn;kuangshaoping@126.com;huatang79@163.com
  • 基金资助:
    研究得到了国家自然科学基金(22302106和22378219)、山东省泰山学者计划(编号:tsqn202312170)、山东省优秀青年科学基金(海外)(2024HWYQ-069)以及山东省高校青年创新团队科技支持计划(2023KJ225)的资助。

Auδ+-Au interfacial engineering in TpPa COFs for enhanced photocatalytic H2O2 production

Fanglong Sun1, Junhao Tian2, Hongwen Zhang2, Shaoping Kuang1, Hua Tang2   

  1. 1 College of Environment and Safety Engineering, Qingdao University of Science and Technology, Qingdao 266000, Shandong Province, China;
    2 School of Environmental Science and Engineering, Qingdao University, Qingdao 266071, Shandong Province, China
  • Received:2026-06-30 Revised:2026-07-25 Accepted:2026-07-26
  • Contact: Hongwen Zhang, Shaoping Kuang, Hua Tang E-mail:zhanghongwen@qdu.edu.cn;kuangshaoping@126.com;huatang79@163.com

摘要: 光催化利用水和氧气直接合成H2O2为替代传统蒽醌法提供了一种绿色且可持续的策略。然而,其实际应用仍受限于氧气还原过程中的缓慢活化动力学以及光生电子-空穴对的快速复合, 严重阻碍了H2O2生成效率的提升。本文通过将金物种原位光沉积到β-酮烯胺连接的TpPa框架上, 构建了一种Auδ+-Au/TpPa共价有机框架光催化剂。金物种与TpPa框架之间的强界面相互作用触发了界面电子重新分布, 从而在金属金附近生成缺电子的Auδ+位点。缺电子Auδ+位点与金属金的共存建立了一条界面电子转移路径,这不仅加速了电荷分离与迁移,还优化了氧气吸附与活化的局部电子环境。此外,金纳米颗粒的局域表面等离子体共振效应增强了可见光捕获能力,而TpPa的有序多孔通道则为质子传输提供了有利的微环境。因此, 优化后的Auδ+-Au/TpPa光催化剂在可见光照射下实现了95.4μmol g-1 h-1的H2O2产率, 是TpPa的两倍。这项工作为开发基于COF的高效光催化剂以实现太阳能驱动的H2O2合成提供了新的设计思路。

关键词: 光催化H2O2生产, Auδ+-Au双位点, TpPa共价有机框架, 界面电子工程, 双电子氧还原反应

Abstract: Photocatalytic H2O2 production from water and O2 is a promising sustainable alternative to the traditional anthraquinone process, but its efficiency is often limited by sluggish O2 activation and rapid charge recombination. Herein, an Auδ+-Au/TpPa covalent organic framework photocatalyst was constructed via in situ photodeposition of Au species onto a β-ketoenamine-linked TpPa framework. Strong interfacial interactions between Au species and the TpPa framework trigger interfacial electron redistribution, resulting in the generation of electron-deficient Auδ+ sites adjacent to metallic Au. The coexistence of electrondeficient Auδ+ sites and metallic Au establishes an interfacial electron-transfer pathway, which not only accelerates charge separation and migration but also optimizes the local electronic environment for O2 adsorption and activation. In addition, the localized surface plasmon resonance (LSPR) effect of Au nanoparticles enhances visible-light harvesting, while the ordered porous channels of TpPa provide a favorable microenvironment for proton transport. Consequently, the optimized Auδ+-Au/TpPa photocatalyst achieves an H2O2 yield rate of 95.4 μmol g-1 h-1 under visible-light irradiation, which is more than twice that of pristine TpPa. This work provides new insights into interfacial electronic-structure engineering for developing efficient COF-based photocatalysts toward solar-driven H2O2 synthesis.

Key words: Photocatalytic H2O2 production, Auδ+-Au dual sites, TpPa covalent organic frameworks, Interfacial electronic engineering, Two-electron oxygen reduction reaction