化学物理
电极
工作(物理)
电子转移
相(物质)
密度泛函理论
化学能
度量(数据仓库)
能量(信号处理)
电解质
纳米技术
电子结构
化学
材料科学
能量转换
电子
过程(计算)
马库斯理论
石墨烯
能量转移
动能
电势能
势能
调制(音乐)
物理
钥匙(锁)
电子传输链
相对相位
活化能
作者
Sonal Maroo,Leonardo Coello Escalante,Yihong Wang,Matthew P. Erodici,Jonathon Nessralla,Ayana Tabo,Takashi Taniguchi,Kenji Watanabe,Ke Xu,David T. Limmer,D. Kwabena Bediako
出处
期刊:Nature
[Nature Portfolio]
日期:2026-04-22
卷期号:653 (8113): 98-103
标识
DOI:10.1038/s41586-026-10311-2
摘要
Abstract Electron transfer (ET) reactions underpin energy conversion and chemical transformations in both biological 1,2 and abiological 3–5 systems. The efficiency of any ET process relies on achieving a desired ET rate within an optimal driving force range. Marcus theory 6,7 provides a microscopic framework for understanding the activation free energy—and therefore the rate—of ET in terms of a key parameter: the reorganization energy. For electrified solid–liquid interfaces, it has long been conventionally understood that only factors in the electrolyte phase are responsible for determining the reorganization energy and that the electronic density of states (DOS) of the electrode only serves to dictate the number of thermally accessible channels for ET 5,8–12 . Here we show instead that the electrode DOS plays a central role in governing the reorganization energy, far outweighing its conventionally assumed role. Using atomically layered heterostructures, we tune the DOS of graphene and measure outer-sphere ET kinetics. We find the ensuing variation in ET rate arises from strong modulation in a reorganization energy associated with image potential localization in the electrode. Here we redefine the traditional paradigm of heterogeneous ET kinetics, revealing a deeper role of the electrode electronic structure in interfacial reactivity.
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