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用于超高燃料电池阴极性能的氮化钴植入铂钴金属间化合物纳米催化剂。

Cobalt Nitride-Implanted PtCo Intermetallic Nanocatalysts for Ultrahigh Fuel Cell Cathode Performance.

作者信息

Maulana Muhammad Irfansyah, Jo Tae Hwan, Lee Ha-Young, Lee Chaehyeon, Gyan-Barimah Caleb, Shin Cheol-Hwan, Yu Jeong-Hoon, Lee Kug-Seung, Back Seoin, Yu Jong-Sung

机构信息

Department of Energy Science and Engineering, Daegu Gyeongbuk Institute of Science and Technology (DGIST), Daegu 42988, Republic of Korea.

Department of Chemical and Biomolecular Engineering, Institute of Emergent Materials, Sogang University, Seoul 04107, Republic of Korea.

出版信息

J Am Chem Soc. 2024 Nov 13;146(45):30922-30932. doi: 10.1021/jacs.4c09514. Epub 2024 Oct 29.

Abstract

Stable and active oxygen reduction electrocatalysts are essential for practical fuel cells. Herein, we report a novel class of highly ordered platinum-cobalt (Pt-Co) alloys embedded with cobalt nitride. The intermetallic core-shell catalyst demonstrates an initial mass activity of 0.88 A mg at 0.9 V with 71% retention after 30,000 potential cycles of an aggressive square-wave accelerated durability test and loses only 9% of its electrochemical surface area, far exceeding the US Department of Energy 2025 targets, with unprecedented stability and only a minimal voltage loss under practical fuel cell operating conditions. We discover that regulating the atomic ordering in the core results in an optimal lattice configuration that accelerates the oxygen reduction kinetics. The presence of cobalt nitride decorated within PtCo superlattices guarantees a larger barrier to Co dissolution, leading to the excellent endurance of the electrocatalysts. This work brings up a transformative structural engineering strategy for rationally designing high-performing Pt-based catalysts with a unique atomic configuration for broad practical uses in energy conversion technology.

摘要

稳定且活性高的氧还原电催化剂对于实用型燃料电池至关重要。在此,我们报道了一类新型的嵌入氮化钴的高度有序铂钴(Pt-Co)合金。这种金属间化合物核壳催化剂在0.9 V时的初始质量活性为0.88 A mg,在进行了30000次激进的方波加速耐久性测试的电位循环后保留率为71%,且其电化学表面积仅损失9%,远远超过美国能源部2025年的目标,在实际燃料电池运行条件下具有前所未有的稳定性且电压损失极小。我们发现,调节核内的原子有序性会产生一种优化的晶格构型,从而加速氧还原动力学。PtCo超晶格中修饰的氮化钴的存在保证了更大的钴溶解能垒,从而使电催化剂具有出色的耐久性。这项工作提出了一种变革性的结构工程策略,用于合理设计具有独特原子构型的高性能铂基催化剂,以广泛应用于能量转换技术。

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