催化作用
材料科学
色散(光学)
铂金
集聚经济
脆弱性
纳米颗粒
化学工程
铂纳米粒子
化学物理
量子点
产量(工程)
密度泛函理论
量子产额
纳米技术
制氢
反应性(心理学)
过渡金属
粒子(生态学)
氢
光催化
结构稳定性
胶体
多相催化
工作(物理)
活化能
科技与社会
可见光谱
分子动力学
化学
粒径
作者
Juneseo Park,Sungju Yu
标识
DOI:10.1002/anie.202522214
摘要
The structural fluidity of single-atom photocatalysts under illumination challenges conventional assumptions about catalytic identity, prompting a reevaluation of what defines and sustains active sites. Here, we show that the site density of atomically dispersed Pt on TiO2 nanoparticles dictates their structural evolution and photocatalytic performance during the H2 evolution reaction (HER). There is a critical dispersion threshold that separates the stable single-atom state from the aggregative regime with less reactive multi-atom ensembles. Under optimized conditions, isolated Pt sites resist light-enhanced agglomeration and deliver HER activities (0.246 s-1) up to 82-fold higher than those of Pt nanoparticles (0.003 s-1), achieving an apparent quantum yield of 9.1%. Beyond this threshold, atomic dispersion deteriorates through a first-order aggregation process, resulting in an exponential loss of isolated sites and a sharp rise in the activation free energy ΔΔG‡ up to 17.1 kJ mol-1. Combined experimental and theoretical analyses quantify the transition in catalyst architecture and activity, revealing a structure-stability-activity relationship. This framework defines a reactivity window governed by the interplay between spatial isolation and structural fragility in single-atom catalysis.
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