双金属片
催化作用
材料科学
二硫化钼
化学工程
制氢
合金
离解(化学)
吉布斯自由能
拉曼光谱
氢
氢燃料
无机化学
氧化物
金属
相(物质)
钼
解吸
吸附
活动站点
电催化剂
氢气储存
纳米颗粒
微型反应器
分解水
石墨烯
硫黄
碱金属
析氧
氧化还原
电解质
作者
Rui Su,Ting Ding,Haolin Tang,Xueying Yang,Jie Zhang,Xiaolin Liu,Jinfu Jia,Yuan Liu,Ge Jin,Zhilin Wu,Zhengya Dong,Xiaojing Zhu
标识
DOI:10.1002/advs.202519323
摘要
Developing efficient, scalable electrocatalysts for the hydrogen evolution reaction (HER) is crucial for industrial H2 production. Herein, ultrafine (≈1.7 nm) ruthenium-cobalt (RuCo) alloys anchored on Sulfur-vacancy-rich 1T phase molybdenum disulfide (1T phase MoS2-x) nanosheets (denoted as Ru2Co1-4@E-MoS2-x) are synthesized via ultrasonic microreactor (USMR) technology. The USMR strategy concurrently achieves a reduced alloy size, accelerated Ru reduction kinetics, and improved metal dispersion, endowing the resulting catalysts with high metal loading and abundant accessible active sites. Experimental and theoretical analyses reveal that Co incorporation optimizes RuCo electronic structure and strengthens interfacial coupling with 1T phase MoS2-x, lowering the Gibbs free energy of H* adsorption (ΔGH*) on both Ru and Co sites. This synergistic interaction establishes bimetallic active centers that overcome the adsorption-desorption trade-off in single-metal systems. In situ Raman spectroscopy further confirms that Co promotes water dissociation and hydrogen desorption at Ru sites under alkaline conditions. Consequently, Ru2Co1-4@E-MoS2-x exhibits exceptional HER activity, achieving record-low overpotentials of 31 mV in acidic and 36 mV in alkaline media at 10 mA·cm-2, significantly outperforming 20 wt% Pt/C (45 and 53 mV, respectively). Moreover, the USMR approach is universal, generating highly active RuM@E-MoS2-x catalysts (M = Fe, Ni, Cu). This work establishes a novel "bimetallic active sites/engineered carrier" paradigm for advanced electrocatalytic water splitting.
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