Covalent Transition Metal Borosilicides: Reaction Pathways in Molten Salts for Water Oxidation Electrocatalysis.

IF 14.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY Journal of the American Chemical Society Pub Date : 2024-08-07 Epub Date: 2024-07-29 DOI:10.1021/jacs.4c06074
Daniel Janisch, Fernando Igoa Saldaña, Edouard De Rolland Dalon, Carlos V M Inocêncio, Yang Song, Pierre-Olivier Autran, Antoine Miche, Sandra Casale, David Portehault
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Abstract

The properties of transition metal borides and silicides are intimately linked to the covalent character of the chemical bonds within their crystal structures. Bringing boron and silicon together within metal borosilicides can then engender different competing covalent networks and complex charge distributions. This situation results in unique structures and atomic environments, which can impact charge transport and catalytic properties. Metal borosilicides, however, hold the status of unusual exotic species, difficult to synthesize and with poor knowledge of their properties. Our strategy consists of developing a redox pathway to synthesize transition metal borosilicides in inorganic molten salts as high-temperature solvents. By studying the formation of Ni6Si2B, Co4.75Si2B, Fe5SiB2, and Mn5SiB2 with in situ X-ray diffraction, we highlight how new reaction routes, maintaining covalent structural building blocks, draw a general scheme of their formation. This pathway is driven by the covalence of the chemical bonds within the boron coordination framework. Next, we demonstrate high efficiency for water oxidation electrocatalysis, especially for Ni6Si2B. We ascribe the strongly increased resistance to corrosion, high stability, and electrocatalytic activity of the Ni6Si2B-derived material to three factors: (1) the two entangled boron and silicon covalent networks; (2) the ability to codope with boron and silicon an in situ generated catalytic layer; and (3) a rare electron enrichment of the transition metal by back-donation from boron atoms, previously unknown within this compound family. With this work, we then unveil a new chemical dimension for Earth-abundant water oxidation electrocatalysts by bringing to light a new family of materials.

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共价过渡金属硼硅化物:水氧化电催化熔盐中的反应途径。
过渡金属硼化物和硅化物的特性与其晶体结构中化学键的共价特性密切相关。在金属硼硅化物中将硼和硅结合在一起,可以产生不同的竞争共价网络和复杂的电荷分布。这种情况会产生独特的结构和原子环境,从而影响电荷传输和催化特性。然而,金属硼硅化物属于不常见的外来物种,很难合成,对其特性也知之甚少。我们的策略是开发一种氧化还原途径,在作为高温溶剂的无机熔盐中合成过渡金属硼硅化物。通过原位 X 射线衍射研究 Ni6Si2B、Co4.75Si2B、Fe5SiB2 和 Mn5SiB2 的形成过程,我们强调了新的反应路线是如何保持共价结构基块,并绘制出它们形成的总体方案。这种途径是由硼配位框架内化学键的共价性驱动的。接下来,我们展示了水氧化电催化的高效率,尤其是 Ni6Si2B。我们认为,Ni6Si2B 衍生材料的抗腐蚀性、高稳定性和电催化活性的显著提高归因于三个因素:(1) 硼和硅的两个纠缠共价网络;(2) 与硼和硅共价生成原位催化层的能力;(3) 通过硼原子的反向捐赠实现过渡金属罕见的电子富集,这在该化合物家族中之前是未知的。通过这项工作,我们揭示了一个新的材料家族,从而为富含地球的水氧化电催化剂揭开了一个新的化学层面。
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来源期刊
CiteScore
24.40
自引率
6.00%
发文量
2398
审稿时长
1.6 months
期刊介绍: The flagship journal of the American Chemical Society, known as the Journal of the American Chemical Society (JACS), has been a prestigious publication since its establishment in 1879. It holds a preeminent position in the field of chemistry and related interdisciplinary sciences. JACS is committed to disseminating cutting-edge research papers, covering a wide range of topics, and encompasses approximately 19,000 pages of Articles, Communications, and Perspectives annually. With a weekly publication frequency, JACS plays a vital role in advancing the field of chemistry by providing essential research.
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