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层状水钠锰矿中 Fe(III)的配位活化位点用于高效水氧化。

Fe(III) Docking-Activated Sites in Layered Birnessite for Efficient Water Oxidation.

机构信息

School of Chemical Biology and Biotechnology, Shenzhen Graduate School, Peking University, Shenzhen 518055, China.

Institute of Systems and Physical Biology, Shenzhen Bay Laboratory, Shenzhen 518107, China.

出版信息

J Am Chem Soc. 2023 May 24;145(20):11215-11226. doi: 10.1021/jacs.3c01181. Epub 2023 May 12.

Abstract

Non-noble metal catalysts for promoting the sluggish kinetics of oxygen evolution reaction (OER) are essential to efficient water splitting for sustainable hydrogen production. Birnessite has a local atomic structure similar to that of an oxygen-evolving complex in photosystem II, while the catalytic activity of birnessite is far from satisfactory. Herein, we report a novel Fe-Birnessite (Fe-Bir) catalyst obtained by controlled Fe(III) intercalation- and docking-induced layer reconstruction. The reconstruction dramatically lowers the OER overpotential to 240 mV at 10 mA/cm and the Tafel slope to 33 mV/dec, making Fe-Bir the best of all the reported Bir-based catalysts, even on par with the best transition-metal-based OER catalysts. Experimental characterizations and molecular dynamics simulations elucidate that the catalyst features active Fe(III)-O-Mn(III) centers interfaced with ordered water molecules between neighboring layers, which lower reorganization energy and accelerate electron transfer. DFT calculations and kinetic measurements show non-concerted PCET steps conforming to a new OER mechanism, wherein the neighboring Fe(III) and Mn(III) synergistically co-adsorb OH* and O* intermediates with a substantially reduced O-O coupling activation energy. This work highlights the importance of elaborately engineering the confined interlayer environment of birnessite and more generally, layered materials, for efficient energy conversion catalysis.

摘要

对于促进析氧反应 (OER) 缓慢动力学的非贵金属催化剂对于可持续制氢的高效水分解至关重要。水钠锰矿具有类似于光合作用系统 II 中放氧复合物的局部原子结构,但其催化活性远不能令人满意。在此,我们报告了一种通过控制 Fe(III)插层和对接诱导的层重建获得的新型 Fe-水钠锰矿 (Fe-Bir) 催化剂。这种重建极大地降低了 OER 的过电位至 240 mV 在 10 mA/cm 下和 33 mV/dec 的塔菲尔斜率,使 Fe-Bir 成为所有报道的基于 Bir 的催化剂中最好的,甚至与最好的基于过渡金属的 OER 催化剂相当。实验表征和分子动力学模拟阐明了催化剂具有与相邻层之间有序水分子界面的活性 Fe(III)-O-Mn(III)中心,这降低了重组能并加速了电子转移。DFT 计算和动力学测量表明,非协同的 PCET 步骤符合新的 OER 机制,其中相邻的 Fe(III)和 Mn(III)协同共吸附 OH和 O中间体,大大降低了 O-O 耦合活化能。这项工作强调了精心设计水钠锰矿和更普遍的层状材料的受限层间环境对于高效能量转换催化的重要性。

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