Zhang Chuang, Feng Zhanxiong, Lei Yijie, Zhang Xun, Gao Weitao, Sun Lianguo, Liu Zhuangzhi, Wang Jianlong, Wang Yun, Wang Cheng
Zhang Jiagang Joint Institute for Hydrogen Energy and Lithium-Ion Battery Technology, INET, Tsinghua University, Beijing 100000, PR China.
School of Automobile and Traffic Engineering, Hubei University of Arts and Science, Xiangyang 441058, PR China.
J Colloid Interface Sci. 2022 Dec 15;628(Pt B):174-188. doi: 10.1016/j.jcis.2022.08.058. Epub 2022 Aug 13.
Traditional synthesis methodologies for fuel cell catalyst production involve long reactions and uncontrollable reaction processes. Synthesis methods for the production of catalysts typically have difficulties to achieve catalysts materials with consistency, high activity, and durability. In this study, a fast, simple, and suitable continuous pipeline microwave method for catalyst mass production was developed, with the carbon carrier being treated at different temperatures simultaneously. The method herein developed resulted in carbon-supported platinum (Pt) catalysts with high activity and high durability. In addition, the half-wave potential of the catalyst exceeded 0.9 V, the electrochemical active surface area reached 85.7 m-g, and the mass specific activity reached 171.1 mA-mg. Remarkably, after 30,000 cycles of Pt attenuation tests and 30,000 cycles of carbon carrier attenuation tests, the retention rate of the annealed carbon carrier catalyst reached 80 %. As a membrane electrode, the catalyst generated a single cell maximum power density of 1.4 W-cm, and the Pt content reached 0.286 g-kW. The work provides an effective and practical method for the mass production of high-performance and high-durability catalysts, which guiding significance for mass production of catalysts.
用于燃料电池催化剂生产的传统合成方法涉及冗长的反应和难以控制的反应过程。催化剂生产的合成方法通常难以获得具有一致性、高活性和耐久性的催化剂材料。在本研究中,开发了一种快速、简单且适用于催化剂大规模生产的连续管道微波方法,同时在不同温度下处理碳载体。本文开发的方法得到了具有高活性和高耐久性的碳载铂(Pt)催化剂。此外,该催化剂的半波电位超过0.9V,电化学活性表面积达到85.7m²/g,质量比活性达到171.1mA/mg。值得注意的是,经过30000次Pt衰减测试循环和30000次碳载体衰减测试循环后,退火碳载体催化剂的保留率达到80%。作为膜电极,该催化剂产生的单电池最大功率密度为1.4W/cm²,Pt含量达到0.286g/kW。这项工作为高性能和高耐久性催化剂的大规模生产提供了一种有效且实用的方法,对催化剂的大规模生产具有指导意义。