双金属片
催化作用
溶剂化
吸附
密度泛函理论
从头算
氢
化学
材料科学
电化学
物理化学
分子动力学
化学稳定性
隐溶剂化
电子效应
热稳定性
可逆氢电极
标准氢电极
氧化还原
氢气储存
电催化剂
无机化学
计算化学
从头算量子化学方法
金属
水溶液
化学物理
电子结构
热力学
结合能
多相催化
化学动力学
化学工程
动力学
作者
Faheem Abbas,Zheyu Wei,Yongge Wei
标识
DOI:10.1002/adts.202501185
摘要
Abstract Single‐atom catalysts (SACs) offer maximum atomic efficiency and well‐defined active sites, yet their limited coordination environment often restricts performance in multistep redox reactions. To overcome this, phosphorus‐bridged bimetallic SACs featuring dual‐metal centers (transition metal (TM) 1─P─TM2) are designed and computationally screened for electrocatalytic water splitting and hydrogen storage. Using spin‐polarized density functional theory, their thermodynamic and kinetic performances are evaluated through adsorption free energies, binding energies, and electronic descriptors. Thermal stability is further confirmed through ab initio molecular dynamics simulations at 300 K under a Nosé–Hoover thermostat. Among the studied hydrogen evolution reaction (HER) catalysts, the Mn─P─Fe (Mn) catalyst at the Mn active site exhibits nearly ideal HER activity (Δ G H* = 0.09 eV). Notably, the V─P─Cr (V‐site) catalyst shows favorable hydrogen storage capacity (3.31 wt%). Furthermore, solvation effects are examined using implicit, explicit, and hybrid models via Vienna Ab initio Simulation package solvation and their kinetics evaluated by electronic descriptors to more accurately predict adsorption energies under aqueous conditions.
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