杰纳斯
材料科学
电场
氢
光催化
催化作用
吸附
化学物理
面(心理学)
惰性
制氢
磷烯
电荷密度
惰性气体
分解水
工作职能
纳米技术
光化学
化学工程
轨道能级差
电子
工作(物理)
密度泛函理论
活动站点
纳米晶
领域(数学)
钴
异质结
氢燃料
作者
Qing Zhou,Xiaoyan Cai,Miao Chen,Qinran Li,Zhongtian Zeng,Li Guo,Zhiguo Cai,Haifeng Weng,Liang Mao
出处
期刊:Rare Metals
[Springer Science+Business Media]
日期:2026-05-01
卷期号:45 (5)
摘要
ABSTRACT The Janus structure of ZnIn 2 S 4 (ZIS) endows it with an intrinsic built‐in electric field that effectively drives photogenerated charge separation. However, this very structure also renders the predominant (001) facet (In–S termination) catalytically inert due to its low electron density and high energy barrier for the hydrogen evolution reaction (HER). This work proposes a synergistic strategy to precisely activate the inert sites on the ZIS (001) facet through atomic‐level cobalt (Co) and phosphorus (P) co‐doping, while fully exploiting the Janus built‐in field for bulk charge separation. Theoretical calculations indicate that Co/P co‐doping forms a stable active center within the In–S layer and optimizes the hydrogen adsorption free energy (Δ G H ) at the P site to a near‐ideal value of −0.07 eV through P 3p and Co 3d orbital hybridization. Experimentally, Co/P co‐doped ZIS nanosheets were successfully synthesized, achieving a visible‐light‐driven photocatalytic HER rate of 6.07 mmol g −1 h −1 , representing a 5.62‐fold enhancement over pristine ZIS. Mechanism studies confirm that the performance improvement stems from the synergy between the built‐in electric field and atomic‐level doping, in which the built‐in field efficiently separates charges, whereas the Co‐P active sites strongly trap and utilize electrons, enabling an efficient relay from charge separation to surface reactions. This work provides a new perspective for precisely regulating interfacial processes in catalytic materials through multi‐strategy synergy.
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