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2D/2D hierarchical Co3O4/ZnIn2S4 heterojunction with robust built-in electric field for efficient photocatalytic hydrogen evolution

Guping Zhang, Xunxun Li, Mengmeng Wang, Xueqing Li, Yaru Wang, Shuting Huang, Dongyun Chen, Najun Li, Qingfeng Xu, Hua Li, Jianmei Lu

2022Nano Research96 citationsDOI

Abstract

Because of its importance in enhancing charge separation and transfer, built-in electric field engineering has been acknowledged as an effective technique for improving photocatalytic performance. Herein, a stable p–n heterojunction of 2D/2D (2D: two-dimensional) Co3O4/ZnIn2S4 with a strong built-in electric field is precisely constructed. The Co3O4/ZnIn2S4 heterojunction exhibits a higher visible-light photocatalytic hydrogen (H2) evolution rate than the individual components, which is primarily attributed to the synergy effect of improved light absorption, abundant active sites, short charge transport distance, and high separation efficiency of photogenerated carriers. Furthermore, the photoelectrochemical studies and density functional theory (DFT) calculation results demonstrate that the enhanced interfacial charge separation and migration induced by the generated built-in electric field are the critical reasons for the boosted photocatalytic performance. This research might pave the way for the rational design and manufacturing of 2D/2D heterojunction photocatalysts with extremely efficient photocatalytic performance for solar energy conversion.

Topics & Concepts

HeterojunctionPhotocatalysisElectric fieldMaterials scienceCharge carrierDensity functional theoryVisible spectrumOptoelectronicsWater splittingPhotocatalytic water splittingNanotechnologyChemistryCatalysisComputational chemistryPhysicsQuantum mechanicsBiochemistryAdvanced Photocatalysis TechniquesCopper-based nanomaterials and applications2D Materials and Applications