邻近单原子催化的Fe4簇上的高效氧还原催化

IF 13 2区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Small Pub Date : 2025-03-21 DOI:10.1002/smll.202501746
Furi Wang, Xujiao Ma, Xiaofang Su, Zhong Zhang, Wei Liu, Jiahui Peng, Zongyin Gao, Jian Zhang, Yiwei Liu
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引用次数: 0

摘要

传统四电子传递途径固有的缓慢动力学从根本上限制了氧还原反应(ORR)的效率。虽然电子结构调制提供了潜在的解决方案,但由于难以捉摸的结构-活性相关性,开发有效的催化调节策略仍然具有挑战性。在这项研究中,Fe4簇位被设计成具有双平行电子转移通道,可以同时进行O─O键裂解和双氧原子质子化。这种独特的结构有利于优化两步双电子传递机制,显著提高ORR动力学。协同的Mn单原子位置被战略性地定位为电子库,大大提高了Fe4簇的电子密度,同时通过电荷再分配增强了Fe─N配位键。值得注意的是,Fe4簇在支撑外围的空间结构最大限度地减少了空间限制效应,允许同时进行产物解吸和氧吸附——这是维持连续催化循环的关键优势。通过实验和理论相结合的分析,证明了这种双通道电子传递系统有效地降低了基本步骤的激活势垒,同时加速了电荷传递动力学。本基础研究为通过多位点协同工程和反应路径优化设计高性能ORR催化剂建立了新的范例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Efficient Oxygen Reduction Catalysis on Fe4 Cluster Site Facilitated by Adjacent Single Atom

Efficient Oxygen Reduction Catalysis on Fe4 Cluster Site Facilitated by Adjacent Single Atom

Efficient Oxygen Reduction Catalysis on Fe4 Cluster Site Facilitated by Adjacent Single Atom

The inherent sluggish kinetics of the conventional four-electron transfer pathway fundamentally limits the oxygen reduction reaction (ORR) efficiency. While electronic structure modulation offers potential solutions, developing effective catalytic regulation strategies remains challenging due to elusive structure-activity correlations. In this study, Fe4 cluster sites are engineered with dual parallel electron transfer channels that enable concurrent O─O bond cleavage and dual oxygen atom protonation. This unique configuration facilitates an optimized two-step double electron transfer mechanism, significantly enhancing ORR kinetics. Synergistic Mn single atom sites, strategically positioned as electron reservoirs, substantially elevate the electron density of Fe4 clusters while reinforcing Fe─N coordination bonds through charge redistribution. Remarkably, the spatial configuration of Fe4 clusters at the support periphery minimizes steric confinement effects, allowing simultaneous product desorption and oxygen adsorption – a critical advantage for sustaining continuous catalytic cycles. Through combined experimental and theoretical analyses, it is demonstrated that this dual-channel electron transport system effectively reduces activation barriers for elementary steps while accelerating charge transfer kinetics. This fundamental study establishes a new paradigm for designing high-performance ORR catalysts through multi-site collaborative engineering and reaction pathway optimization.

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来源期刊
Small
Small 工程技术-材料科学:综合
CiteScore
17.70
自引率
3.80%
发文量
1830
审稿时长
2.1 months
期刊介绍: Small serves as an exceptional platform for both experimental and theoretical studies in fundamental and applied interdisciplinary research at the nano- and microscale. The journal offers a compelling mix of peer-reviewed Research Articles, Reviews, Perspectives, and Comments. With a remarkable 2022 Journal Impact Factor of 13.3 (Journal Citation Reports from Clarivate Analytics, 2023), Small remains among the top multidisciplinary journals, covering a wide range of topics at the interface of materials science, chemistry, physics, engineering, medicine, and biology. Small's readership includes biochemists, biologists, biomedical scientists, chemists, engineers, information technologists, materials scientists, physicists, and theoreticians alike.
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