Vanessa Wyss , Ionel Adrian Dinu , Laurent Marot , Cornelia G. Palivan , Murielle F. Delley
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Similarly to OER, the surface-oxidized CoS<sub>x</sub> formed under reaction conditions outperformed the directly prepared cobalt oxide, hydroxide, and oxyhydroxide for epoxidation catalysis. Another notable phenomenological parallel to OER was revealed by the electron paramagnetic resonance (EPR) analysis of all spent Co-based catalysts that showed significant structural changes and the formation of paramagnetic Co(<span>ii</span>) and Co(<span>iv</span>) species. Mechanistic investigations suggest that a higher density of Co(<span>ii</span>) and/or an easier formation of high-valent Co species in the case of surface-oxidized cobalt sulfide is responsible for its high activity as an epoxidation catalyst. Our results provide important insight into the surface chemistry of Co-based catalysts and show the potential of oxidized CoS<sub>x</sub> as an earth-abundant catalyst for O-transfer reactivity beyond OER. 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引用次数: 0
摘要
利用异相催化的两个分支学科:电催化和热催化的知识,可以指导地球富集材料催化方面的新发现。据报道,硫化钴是氧进化反应(OER)的高活性电催化剂。在这些氧化条件下,硫化钴形成的氧化表面在 OER 催化方面优于直接制备的氧化钴。我们推测,氧化硫化钴对 OER 的催化活性可能反映了催化 O 转移反应的更普遍能力。在此,我们证明硫化钴(CoSx)确实能催化环辛烯的环氧化反应,这是一种热O转移反应。与 OER 相似,在反应条件下形成的表面氧化 CoSx 的环氧化催化性能优于直接制备的氧化钴、氢氧化物和氢氧化氧。对所有乏钴基催化剂进行的电子顺磁共振 (EPR) 分析表明了与 OER 相似的另一个显著现象,即催化剂的结构发生了显著变化,并形成了顺磁性 Co(II) 和 Co(IV) 物种。机理研究表明,表面氧化的硫化钴具有更高的 Co(II) 密度和/或更容易形成高价 Co 物种,这是其作为环氧化催化剂具有高活性的原因。我们的研究结果为了解 Co 基催化剂的表面化学性质提供了重要依据,并显示了氧化 CoSx 作为一种富土催化剂在 OER 以外的 O-转移反应活性方面的潜力。这项工作凸显了电催化和热催化之间的桥梁作用,有助于开发更具可持续性的化学工艺。
Thermocatalytic epoxidation by cobalt sulfide inspired by the material's electrocatalytic activity for oxygen evolution reaction†
New discoveries in catalysis by earth-abundant materials can be guided by leveraging knowledge across two sub-disciplines of heterogeneous catalysis: electrocatalysis and thermocatalysis. Cobalt sulfide has been reported to be a highly active electrocatalyst for the oxygen evolution reaction (OER). Under these oxidative conditions, cobalt sulfide forms oxidized surfaces that outperform directly prepared cobalt oxide in OER catalysis. We postulated that the catalytic activity of oxidized cobalt sulfide for OER could reflect a more general ability to catalyze O-transfer reactions. Herein, we show that cobalt sulfide (CoSx) indeed catalyzes the epoxidation of cyclooctene, a thermal O-transfer reaction. Similarly to OER, the surface-oxidized CoSx formed under reaction conditions outperformed the directly prepared cobalt oxide, hydroxide, and oxyhydroxide for epoxidation catalysis. Another notable phenomenological parallel to OER was revealed by the electron paramagnetic resonance (EPR) analysis of all spent Co-based catalysts that showed significant structural changes and the formation of paramagnetic Co(ii) and Co(iv) species. Mechanistic investigations suggest that a higher density of Co(ii) and/or an easier formation of high-valent Co species in the case of surface-oxidized cobalt sulfide is responsible for its high activity as an epoxidation catalyst. Our results provide important insight into the surface chemistry of Co-based catalysts and show the potential of oxidized CoSx as an earth-abundant catalyst for O-transfer reactivity beyond OER. This work highlights the utility of bridging electrocatalysis and thermocatalysis for the development of more sustainable chemical processes.
期刊介绍:
A multidisciplinary journal focusing on cutting edge research across all fundamental science and technological aspects of catalysis.
Editor-in-chief: Bert Weckhuysen
Impact factor: 5.0
Time to first decision (peer reviewed only): 31 days