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调控单原子催化剂的协同环境用于电催化 CO 还原。

Regulating the coordination environment of single-atom catalysts for electrocatalytic CO reduction.

机构信息

Department of Energy and Petroleum Engineering, University of Stavanger, 4036 Stavanger, Norway.

Beyonder AS, 4033 Stavanger, Norway.

出版信息

J Colloid Interface Sci. 2023 Sep 15;646:301-310. doi: 10.1016/j.jcis.2023.05.064. Epub 2023 May 13.

Abstract

Electrochemical CO reduction (ECR) through single-atom catalysts (SACs) consisting of transition metals (TMs) anchored on nitrogenated carbon (TM-N-C) has shown promise for carbon neutralization. However, high overpotentials and low selectivity are still issues. Regulating the coordination environment of anchored TM atom is important to address these problems. In this study, we evaluated nonmetal atom (NM = B, O, F, Si, P, S, Cl, As and Se) modified TM (TM = Fe, Co, Ni, Cu and Zn)@N-C catalysts for their ECR to CO performance using density functional theory (DFT) calculations. NM dopants can induce active center distortion and tune electron structure, promoting intermediate formation. Doping heteroatoms can improve ECR to CO activity on Ni and Cu@N but worsen it on Co@N catalysts. Fe@N-F(I), Ni@N-B, Cu@N-O(III), and Zn@N-Cl(II) have excellent activity for ECR to CO, with overpotentials of 0.75, 0.49, 0.43, and 0.15 V, respectively, and improved selectivity. The catalytic performance is related to the intermediate binding strength, as evidenced by d band center, charge density difference, crystal orbital Hamilton population (COHP), and integrated COHP (ICOHP). It is expected that our work can be used as the design principle to guide the synthesis of the high-performance heteroatoms modified SACs for ECR to CO.

摘要

电化学 CO 还原(ECR)通过过渡金属(TM)锚定在氮掺杂碳(TM-N-C)上的单原子催化剂(SACs)显示出了实现碳中性的潜力。然而,高过电位和低选择性仍然是问题。调节锚定 TM 原子的配位环境对于解决这些问题很重要。在这项研究中,我们使用密度泛函理论(DFT)计算评估了非金属原子(NM=B、O、F、Si、P、S、Cl、As 和 Se)修饰的 TM(TM=Fe、Co、Ni、Cu 和 Zn)@N-C 催化剂对其 ECR 到 CO 性能的影响。NM 掺杂剂可以诱导活性中心变形并调整电子结构,促进中间产物的形成。掺杂杂原子可以提高 Ni 和 Cu@N 上的 ECR 到 CO 活性,但会降低 Co@N 催化剂上的活性。Fe@N-F(I)、Ni@N-B、Cu@N-O(III)和 Zn@N-Cl(II)对 ECR 到 CO 具有优异的活性,过电位分别为 0.75、0.49、0.43 和 0.15 V,且选择性提高。催化性能与中间体结合强度有关,这可以通过 d 带中心、电荷密度差、晶体轨道哈密顿人口(COHP)和积分 COHP(ICOHP)来证明。预计我们的工作可以作为设计原则,指导高性能杂原子修饰 SACs 的合成,以用于 ECR 到 CO。

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