Tang Zisheng, Zhao Dafu, Wang Xiaoqian, Jiao Yanhui, Liu Manrui, Liu Chengqi, Zhang Qi, Ren Shujing, Liu Yong
State Key Laboratory of Advanced Technology for Materials Synthesis and Processing, Wuhan University of Technology, Wuhan 430070, China.
Materials (Basel). 2025 Mar 13;18(6):1279. doi: 10.3390/ma18061279.
Enhancing the limited utilization and overall yield of Pt-based catalysts is essential for advancing proton exchange membrane fuel cell technology. Herein, we report a facile one-pot method that utilizes TEG as both a solvent and a reductant to efficiently synthesize a Pd@Pt core-shell icosahedron. By controlling the surface energy between Pd and Pt precursors, we achieved the formation of Pd@Pt core-shell icosahedra, resulting in a fourfold reduction in reaction time and an eightfold increase in yield. Moreover, the core-shell structures exhibited a significant enhancement in electrocatalytic activity, stability, and Pt utilization efficiency. In comparison to commercial Pt/C, the Pd@Pt core-shell icosahedron exhibited efficient mass activity (MA, 1.54 A mg) and specific activity (SA, 2.24 mA cm) at 0.9 V (vs. RHE), while demonstrating excellent stability with minimal loss of activity even after 10,000 potential cycles. The Pd@Pt icosahedra configuration integrates the advantages of multiply twinned nanostructures, leading to rich electrochemical active surface sites and fast charge transport, thereby improving its catalytic performance and long-term stability during electrocatalytic reactions.
提高铂基催化剂的有限利用率和总产率对于推动质子交换膜燃料电池技术至关重要。在此,我们报道了一种简便的一锅法,该方法利用TEG作为溶剂和还原剂来高效合成Pd@Pt核壳二十面体。通过控制Pd和Pt前驱体之间的表面能,我们实现了Pd@Pt核壳二十面体的形成,反应时间缩短了四倍,产率提高了八倍。此外,核壳结构在电催化活性、稳定性和Pt利用效率方面有显著增强。与商业Pt/C相比,Pd@Pt核壳二十面体在0.9 V(相对于RHE)时表现出高效的质量活性(MA,1.54 A mg)和比活性(SA,2.24 mA cm),同时即使在10000次电位循环后也表现出优异的稳定性,活性损失最小。Pd@Pt二十面体构型整合了多重孪晶纳米结构的优点,导致丰富的电化学活性表面位点和快速的电荷传输,从而提高了其在电催化反应中的催化性能和长期稳定性。