Dou Yuhai, He Chun-Ting, Zhang Lei, Yin Huajie, Al-Mamun Mohammad, Ma Jianmin, Zhao Huijun
Centre for Clean Environment and Energy, Gold Coast Campus, Griffith University, Gold Coast, QLD 4222, Australia.
Key Laboratory of Functional Small Organic Molecule, Ministry of Education, College of Chemistry and Chemical Engineering, Jiangxi Normal University, Nanchang, Jiangxi, 330022, China.
Nat Commun. 2020 Apr 3;11(1):1664. doi: 10.1038/s41467-020-15498-0.
Electronic structure engineering lies at the heart of efficient catalyst design. Most previous studies, however, utilize only one technique to modulate the electronic structure, and therefore optimal electronic states are hard to be achieved. In this work, we incorporate both Fe dopants and Co vacancies into atomically thin CoSe nanobelts for /coxygen evolution catalysis, and the resulted CoSe-D-V exhibits much higher catalytic activity than other defect-activated CoSe and previously reported FeCo compounds. Deep characterizations and theoretical calculations identify the most active center of Co site that is adjacent to the V-nearest surface Fe site. Fe doping and Co vacancy synergistically tune the electronic states of Co to a near-optimal value, resulting in greatly decreased binding energy of OH* (ΔE) without changing ΔE, and consequently lowering the catalytic overpotential. The proper combination of multiple defect structures is promising to unlock the catalytic power of different catalysts for various electrochemical reactions.
电子结构工程是高效催化剂设计的核心。然而,以前的大多数研究仅使用一种技术来调节电子结构,因此难以实现最佳电子态。在这项工作中,我们将铁掺杂剂和钴空位同时引入原子级薄的CoSe纳米带中用于析氧催化,所得的CoSe-D-V表现出比其他缺陷激活的CoSe和先前报道的铁钴化合物更高的催化活性。深入的表征和理论计算确定了与最近表面铁位点相邻的钴位点为最活跃中心。铁掺杂和钴空位协同将钴的电子态调节至接近最佳值,导致OH*的结合能(ΔE)大幅降低而不改变ΔE,从而降低了催化过电位。多种缺陷结构的适当组合有望释放不同催化剂对各种电化学反应的催化能力。