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具有定制电子结构的P、N共掺杂碳限制双金属钴/镍磷化物的协同工程用于促进尿素电氧化

Synergistic engineering of P, N-codoped carbon-confined bimetallic cobalt/nickel phosphides with tailored electronic structures for boosting urea electro-oxidation.

作者信息

Wu Ying, Kang Jingfei, Liao Houde, Chen Sha, Pi Jiahao, Cao Jianjie, Qing Yan, Xu Han, Wu Yiqiang

机构信息

College of Materials Science and Engineering, Central South University of Forestry and Technology, Changsha 410004, PR China.

College of Science and Technology, Wenzhou-kean University, Wenzhou, Zhejiang 325000, PR China.

出版信息

J Colloid Interface Sci. 2024 Mar 15;658:846-855. doi: 10.1016/j.jcis.2023.12.128. Epub 2023 Dec 23.

Abstract

Bimetallic phosphides exhibit superior electrocatalytic activities and synergistic effects that make them ideal electrocatalysts for the urea oxidation reaction (UOR). Herein, P, N-codoped carbon-encapsulated cobalt/nickel phosphides derived from NiCo-MOF-74 (NiCoP@PNC) and anchored on P-doped carbonized wood fiber (PCWF) for UOR were prepared through synchronous carbonization and phosphorization. By benefiting from the synergistic effect of structural and electronic modulation, NiCoP@PNC/PCWF exhibits excellent UOR electrocatalytic performance under alkaline conditions, achieving a current density of 50 mA cm with a potential of only 1.34 V (vs reversible hydrogen electrode, RHE) and continuous operation for more than 72 h. In addition, for the overall urea splitting, an electrolyzer using UOR replaced OER, which required only 1.50 V to achieve a current density of 50 mA cm with excellent stability, 230 mV less than that required for the HER||OER system. In-depth theoretical analysis further proves that the strong synergistic effect between Co and Ni optimizes electronic structures, yielding excellent UOR properties. The synergistic strategy of structural and electrical modulation provides broad prospects for the design and synthesis of excellent UOR electrocatalysts for energy-saving hydrogen production by using renewable resources.

摘要

双金属磷化物表现出优异的电催化活性和协同效应,使其成为尿素氧化反应(UOR)的理想电催化剂。在此,通过同步碳化和磷化制备了源自NiCo-MOF-74的P、N共掺杂碳包覆钴/镍磷化物(NiCoP@PNC),并将其锚定在用于UOR的P掺杂碳化木纤维(PCWF)上。得益于结构和电子调制的协同效应,NiCoP@PNC/PCWF在碱性条件下表现出优异的UOR电催化性能,在仅1.34 V(相对于可逆氢电极,RHE)的电位下实现了50 mA cm的电流密度,并连续运行超过72小时。此外,对于整体尿素分解,使用UOR替代OER的电解槽仅需1.50 V即可实现50 mA cm的电流密度,且具有出色的稳定性,比HER||OER系统所需的电压低230 mV。深入的理论分析进一步证明,Co和Ni之间的强协同效应优化了电子结构,产生了优异的UOR性能。结构和电学调制的协同策略为设计和合成用于利用可再生资源进行节能制氢的优异UOR电催化剂提供了广阔前景。

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