Department of Energy Engineering, Hanyang University, 04763, Seoul, South Korea.
Department of Electronic Engineering, Kyonggi University, 154-42 Gwanggyosan-ro, Suwon, Gyeonggi-do, 16227, South Korea.
Adv Mater. 2023 Jun;35(26):e2300091. doi: 10.1002/adma.202300091. Epub 2023 May 11.
Proton-exchange-membrane water electrolysis (PEMWE) requires an efficient and durable bifunctional electrocatalyst for the hydrogen evolution reaction (HER) and oxygen evolution reaction (OER). Herein, Ir-based electrocatalyst is designed using the high entropy alloy (HEA) platform of ZnNiCoIrX with two elements (X: Fe and Mn). A facile dealloying in the vacuum system enables the construction of a nanoporous structure with high crystallinity using Zn as a sacrificial element. Especially, Mn incorporation into HEAs tailors the electronic structure of the Ir site, resulting in the d-band center being far away from the Fermi level. Downshifting of the d-band center weakens the adsorption energy with reaction intermediates, which is beneficial for catalytic reactions. Despite low Ir content, ZnNiCoIrMn delivers only 50 mV overpotential for HER at -50 mA cm and 237 mV overpotential for the OER at 10 mA cm . Furthermore, ZnNiCoIrMn shows almost constant voltage for the HER and OER for 100 h and a high stability number of 3.4 × 10 n n and 2.4 × 10 n n , demonstrating the exceptional durability of the HEA platform. The compositional engineering of ZnNiCoIrMn limits the diffusion of elements by high entropy effects and simultaneously tailors the electronic structure of active Ir sites, resulting in the modified cohesive and adsorption energies, all of which can suppress the dissolution of elements.
质子交换膜水电解(PEMWE)需要高效且耐用的双功能电催化剂,用于析氢反应(HER)和析氧反应(OER)。在此,采用 ZnNiCoIrX 高熵合金(HEA)平台的两个元素(X:Fe 和 Mn)设计了 Ir 基电催化剂。在真空系统中的简便脱合金化可利用 Zn 作为牺牲元素构建具有高结晶度的纳米多孔结构。特别是 Mn 掺入 HEAs 可调整 Ir 位的电子结构,导致 d 带中心远离费米能级。d 带中心的下移削弱了与反应中间体的吸附能,这有利于催化反应。尽管 Ir 含量低,但 ZnNiCoIrMn 在 -50 mA cm 时仅需 50 mV 的 HER 过电位,在 10 mA cm 时仅需 237 mV 的 OER 过电位。此外,ZnNiCoIrMn 在 100 h 内对 HER 和 OER 的电压几乎保持不变,稳定性数分别为 3.4×10 n n 和 2.4×10 n n ,证明了 HEA 平台的出色耐久性。ZnNiCoIrMn 的组成工程通过高熵效应限制元素的扩散,同时调整活性 Ir 位的电子结构,从而改变了结合能和吸附能,所有这些都可以抑制元素的溶解。