Cai Qingqing, Xu Rui, Wang Tao, Niu Lengyuan, Gong Yinyan, Li Can
College of Optical and Electronic Technology, China Jiliang University, Hangzhou 310018, China.
School of Micro-Nano Electronics, Zhejiang University, Hangzhou 310027, China.
iScience. 2025 May 27;28(7):112762. doi: 10.1016/j.isci.2025.112762. eCollection 2025 Jul 18.
Medium-entropy compounds (MECs) have attracted significant interest thanks to their exceptional mechanical, physical, and chemical properties, which are associated with their unique atomic structures. In this study, we enhanced the performance of MECs by optimizing their configurational entropy, leading to the formation of abundant quantum dots (QDs) and improved catalytic activity. This structural optimization not only adjusted electronic properties but also boosted catalytic performance and stability in oxygen evolution reactions (OERs). MEC-Fe catalyst demonstrated a low overpotential and outstanding long-term stability compared to others. Density functional theory simulations revealed that the incorporation of Co and Ni atoms increased the configurational entropy and facilitated the formation of short-range ordered QDs. This modification effectively lowered the chemical activity of Fe site, contributing to the enhanced catalytic performance. This design approach provides a promising strategy for advancing MEC, offering a pathway to improve their catalytic efficiency for various applications.
中熵化合物(MECs)因其优异的机械、物理和化学性质而备受关注,这些性质与其独特的原子结构相关。在本研究中,我们通过优化其组态熵提高了MECs的性能,从而导致大量量子点(QDs)的形成并提高了催化活性。这种结构优化不仅调节了电子性质,还提高了析氧反应(OERs)中的催化性能和稳定性。与其他催化剂相比,MEC-Fe催化剂表现出较低的过电位和出色的长期稳定性。密度泛函理论模拟表明,Co和Ni原子的掺入增加了组态熵,并促进了短程有序量子点的形成。这种修饰有效地降低了Fe位点的化学活性,有助于提高催化性能。这种设计方法为推进MECs提供了一种有前景的策略,为提高其在各种应用中的催化效率提供了一条途径。