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通过仿生设计将单钴位点和氮化硼的电场集成在脱氯电催化剂中。

Integrating single-cobalt-site and electric field of boron nitride in dechlorination electrocatalysts by bioinspired design.

机构信息

CAS Key Laboratory of Urban Pollutant Conversion, Department of Environmental Science and Engineering, University of Science and Technology of China, 230026, Hefei, China.

Department of Applied Chemistry, Hefei National Laboratory for Physical Sciences at the Microscale, Collaborative Innovation Center of Chemistry for Energy Materials (iChEM), University of Science and Technology of China, 230026, Hefei, China.

出版信息

Nat Commun. 2021 Jan 12;12(1):303. doi: 10.1038/s41467-020-20619-w.

Abstract

The construction of enzyme-inspired artificial catalysts with enzyme-like active sites and microenvironment remains a great challenge. Herein, we report a single-atomic-site Co catalyst supported by carbon doped boron nitride (BCN) with locally polarized B-N bonds (Co SAs/BCN) to simulate the reductive dehalogenases. Density functional theory analysis suggests that the BCN supports, featured with ionic characteristics, provide additional electric field effect compared with graphitic carbon or N-doped carbon (CN), which could facilitate the adsorption of polarized organochlorides. Consistent with the theoretical results, the Co SAs/BCN catalyst delivers a high activity with nearly complete dechlorination (~98%) at a potential of -0.9 V versus Ag/AgCl for chloramphenicol (CAP), showing that the rate constant (k) contributed by unit mass of metal (k/ratio) is 4 and 19 times more active than those of the Co SAs/CN and state-of-the-art Pd/C catalyst, respectively. We show that Co single atoms coupled with BCN host exhibit high stability and selectivity in CAP dechlorination and suppress the competing hydrogen evolution reaction, endowing the Co SAs/BCN as a candidate for sustainable conversion of organic chloride.

摘要

具有酶样活性中心和微观环境的酶启发式人工催化剂的构建仍然是一个巨大的挑战。在此,我们报告了一种负载在掺硼氮化碳(BCN)上的单原子钴催化剂(Co SAs/BCN),其具有局部极化的 B-N 键,用于模拟还原脱卤酶。密度泛函理论分析表明,与石墨碳或氮掺杂碳(CN)相比,具有离子特性的 BCN 载体提供了额外的电场效应,这有利于极化有机氯化物的吸附。与理论结果一致,Co SAs/BCN 催化剂在相对于 Ag/AgCl 为 -0.9 V 的电势下对氯霉素(CAP)表现出高活性,几乎完全脱氯(~98%),表明单位质量金属(k/比)的速率常数(k)比 Co SAs/CN 和最先进的 Pd/C 催化剂分别高出 4 倍和 19 倍。我们表明,与 BCN 载体结合的 Co 单原子在 CAP 脱氯中表现出高稳定性和选择性,并抑制竞争的析氢反应,使 Co SAs/BCN 成为有机氯化物可持续转化的候选催化剂。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8b76/7803959/99b9388e5317/41467_2020_20619_Fig1_HTML.jpg

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