Gu Chao-Hai, Wang Song, Zhang Ai-Yong, Liu Chang, Jiang Jun, Yu Han-Qing
Chinese Academy of Sciences Key Laboratory of Urban Pollutant Conversion, Department of Environmental Science and Engineering, University of Science and Technology of China, Hefei 230026, China.
Hefei National Research Center for Physical Sciences at the Microscale, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei 230026, China.
Proc Natl Acad Sci U S A. 2023 Oct 24;120(43):e2311585120. doi: 10.1073/pnas.2311585120. Epub 2023 Oct 16.
Single-atom Fenton-like catalysis has attracted significant attention, yet the quest for controllable synthesis of single-atom catalysts (SACs) with modulation of electron configuration is driven by the current disadvantages of poor activity, low selectivity, narrow pH range, and ambiguous structure-performance relationship. Herein, we devised an innovative strategy, the slow-release synthesis, to fabricate superior Cu SACs by facilitating the dynamic equilibrium between metal precursor supply and anchoring site formation. In this strategy, the dynamics of anchoring site formation, metal precursor release, and their binding reaction kinetics were regulated. Bolstered by harmoniously aligned dynamics, the selective and specific monatomic binding reactions were ensured to refine controllable SACs synthesis with well-defined structure-reactivity relationship. A copious quantity of monatomic dispersed metal became deposited on the CN/montmorillonite (MMT) interface and surface with accessible exposure due to the convenient mass transfer within ordered MMT. The slow-release effect facilitated the generation of targeted high-quality sites by equilibrating the supply and demand of the metal precursor and anchoring site and improved the utilization ratio of metal precursors. An excellent Fenton-like reactivity for contaminant degradation was achieved by the Cu/CN/MMT with diminished toxic Cu liberation. Also, the selective ·OH-mediated reaction mechanism was elucidated. Our findings provide a strategy for regulating the intractable anchoring events and optimizing the microenvironment of the monatomic metal center to synthesize superior SACs.
单原子类芬顿催化已引起广泛关注,然而,由于目前存在活性差、选择性低、pH范围窄以及结构-性能关系不明确等缺点,人们致力于可控合成具有电子构型调控的单原子催化剂(SACs)。在此,我们设计了一种创新策略——缓释合成法,通过促进金属前驱体供应与锚定位点形成之间的动态平衡来制备优异的铜单原子催化剂。在该策略中,调控了锚定位点形成、金属前驱体释放的动力学及其结合反应动力学。在协调一致的动力学的支持下,确保了选择性和特异性的单原子结合反应,以优化具有明确结构-反应活性关系的可控SACs合成。由于有序蒙脱石内便捷的传质过程,大量单原子分散的金属沉积在CN/蒙脱石(MMT)界面和表面,且具有可及的暴露。缓释效应通过平衡金属前驱体和锚定位点的供需促进了目标高质量位点的生成,并提高了金属前驱体的利用率。Cu/CN/MMT实现了对污染物降解的优异类芬顿反应活性,同时减少了有毒铜的释放。此外,阐明了选择性·OH介导的反应机制。我们的研究结果为调控棘手的锚定事件和优化单原子金属中心的微环境以合成优异的SACs提供了一种策略。