催化学报 ›› 2026, Vol. 88: 207-217.DOI: 10.1016/S1872-2067(26)65124-8

• 论文 • 上一篇    下一篇

硫诱导电荷位点重构与原位生成ZnO2保护层实现稳定高效的太阳能制备H2O2

孙宇航a,1, 李旭a,1, 曾众天a, 魏华b, 赵宇龙a, 蔡晓燕a,*(), 毛梁a,c,*(), 谭昌龙d, 沈博d, 徐艺军d,*()   

  1. a 中国矿业大学材料与物理学院, 江苏徐州 221116
    b 中国矿业大学先进分析与计算中心, 江苏徐州 221116
    c 德爱威杭州有限公司, 浙江杭州 311200
    d 电子科技大学基础与前沿研究院, 四川成都 611731
  • 收稿日期:2026-01-26 接受日期:2026-03-19 出版日期:2026-09-18 发布日期:2026-09-05
  • 通讯作者: *电子信箱: xycai@cumt.edu.cn (蔡晓燕),
    maoliang@cumt.edu.cn (毛梁),
    yjxu@uestc.edu.cn (徐艺军).
  • 基金资助:
    国家自然科学基金(22309204);国家自然科学基金(22209203);中国博士后科学基金(2023M733742);中国博士后科学基金(2024M763540);中国矿业大学材料科学与工程学科指导基金(CUMTMS202202);中国矿业大学材料科学与工程学科指导基金(CUMTMS202207)

Sulfur-induced charge-site reconstruction and in-situ formed ZnO2 protection enable robust solar H2O2 production

Yuhang Suna,1, Xu Lia,1, Zhongtian Zenga, Hua Weib, Yulong Zhaoa, Xiaoyan Caia,*(), Liang Maoa,c,*(), Chang-Long Tand, Bo Shend, Yi-Jun Xud,*()   

  1. a School of Materials Science and Physics, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China
    b Advanced Analysis and Computation Center, China University of Mining and Technology, Xuzhou 221116, Jiangsu, China
    c Caparol Hangzhou Ltd., Hangzhou 311200, Zhejiang, China
    d Institute of Fundamental and Frontier Sciences, University of Electronic Science and Technology of China, Chengdu 611731, Sichuan, China
  • Received:2026-01-26 Accepted:2026-03-19 Online:2026-09-18 Published:2026-09-05
  • About author:First author contact: 共同第一作者.
    Contributed equally to this work.
  • Supported by:
    The National Natural Science Foundation of China(22309204);The National Natural Science Foundation of China(22209203);The China Postdoctoral Science Foundation(2023M733742);The China Postdoctoral Science Foundation(2024M763540);The Material Science and Engineering Discipline Guidance Fund of China University of Mining and Technology(CUMTMS202202);The Material Science and Engineering Discipline Guidance Fund of China University of Mining and Technology(CUMTMS202207)

摘要:

过氧化氢(H2O2)是一种用途广泛的绿色氧化剂, 但主要依赖高能耗的蒽醌法生产, 这促使人们寻求可持续替代方案. 人工光合作用合成H2O2, 为实现原位、按需且环境友好的制备方式提供了理想路径. 石墨相氮化碳作为一种经典的非金属光催化剂, 虽具有高稳定性、可调的电子结构和低成本等优势, 但其快速的电荷载流子复合极大制约了活性提升. 为此, 研究者开发了异质结工程、形貌调控和杂原子掺杂等多种策略, 然而一个常被忽视的关键挑战是累积H2O2的快速分解, 其高反应活性易在光照下通过自由基途径降解, 不仅降低了净产率, 也阻碍了达到实际应用所需的高浓度. 因此, 构建兼具H2O2高效生成、分解抑制与长期运行稳定性的光催化体系, 是推进太阳能驱动H2O2合成走向实际应用的核心挑战.
本文提出一种“三通道调控”新策略, 通过同步强化H2O2生成路径与抑制其分解途径, 实现了高效、稳定的光催化H2O2合成. 该策略有机整合了硫(S)介导的电荷位点重构、增强的Z型内建电场, 以及光催化过程中原位形成的无定形ZnO2保护层, 三者协同构筑了兼具高活性与高稳定性的光催化体系. 基于该策略构建的Z型异质结光催化剂S-ZnO/ZnO2@CN, 在保留催化剂强氧化与还原能力的同时, 显著提升了光生载流子的分离与传输效率. 具体而言, Z型异质结通过能带匹配与界面电场驱动电子从S-ZnO向S-CN的有效迁移, 既抑制了电荷复合, 又确保了参与表面反应的光生电子与空穴具备充足的热力学驱动力; S掺杂一方面诱导g-C3N4中碳原子的sp2sp3杂化重构, 在分子水平上调控氧还原中间体的吸附与脱附行为, 优化了氧还原反应动力学, 另一方面显著放大了Z型异质结的内建电场强度, 使光生电荷的分离与转移效率得到进一步提升; 此外, 在光催化反应过程中动态形成的无定形ZnO2层, 通过Zn-O6终端配位结构增强了O2吸附能力, 并有效钝化了S-ZnO表面易引发H2O2分解的活性位点, 抑制了类芬顿循环的进行, 从而显著降低了H2O2的分解速率. 上述三方面机制并非简单叠加, 而是在电荷输运、界面反应与表面保护等多个维度形成深度协同: Z型异质结提供高效电荷分离骨架, S掺杂同时强化了电荷分离驱动力与表面反应选择性, 而ZnO2层则为生成的H2O2提供了稳定的微环境. 得益于此, 该催化剂实现了优异的光催化性能, H2O2生成速率高达13.8 mmol/(g·h), 2.5 h内累积浓度达到9 mmol/L, 且连续运行20 h仍保持优异的催化稳定性.
综上, 本工作揭示了电荷位点工程与表面保护策略的协同作用机制, 为突破传统光催化H2O2合成体系的瓶颈、实现太阳能驱动H2O2的稳定高效生产提供了全新研究思路.

关键词: 异质结光催化剂, H2O2生产, 可持续化学, 表面钝化, 杂化工程

Abstract:

Solar-driven synthesis of hydrogen peroxide (H2O2) using semiconductor-based catalysts for practical applications is hindered by intrinsically inefficient separation and transfer of charge carriers, and rapid H2O2 decomposition. Herein, we designed a sulfur (S)-doped g-C3N4/ZnO Z-scheme heterojunction, wherein an amorphous ZnO2 layer is in-situ formed during photocatalysis reaction (denoted as S-ZnO/ZnO2@CN), to achieve robust H2O2 production. Mechanism analysis reveals that S doping enhances the built-in electric field to promote efficient charge carrier separation and induces sp2sp3 hybridization reconstruction in g-C3N4 to create electron-rich active sites that accelerate O2 reduction kinetics and stabilize the critical *OOH intermediates. Concurrently, the in-situ formed ZnO2 layer on the S-doped ZnO surface dynamically passivates decomposition-prone sites through Zn-O6 terminal coordination, spatially isolating reactive intermediates and suppressing H2O2 decomposition via Fenton-like cycle inhibition. The triple synergy between S-tailored charge dynamics, ZnO2-enabled interfacial protection and strengthened Z-scheme built-in electric field maximizes charge separation and transfer while stabilizing the generation of H2O2, thereby resulting in a robust H2O2 production (13.8 mmol/(g·h), reaching 9 mmol/L within 2.5 h, apparent quantum yield: 32.4% at 365 nm). This work establishes a “triple-channel regulation” paradigm toward high activity with operational stability in solar-driven chemical synthesis.

Key words: Heterojunction photocatalyst, H2O2 production, Sustainable chemistry, Surface passivation, Hybridization engineering