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In-Sb Covalent Bonds over Sb 2 Se 3 /In 2 Se 3 Heterojunction for Enhanced Photoelectrochemical Water Splitting.

Junyu WangJialing HeJin-Ling MaXiaodong WangChuanzhen FengQingxia ZhouHuijuan ZhangYu Wang
Published in: Inorganic chemistry (2024)
Antimony selenide is a promising P-type photocatalyst, but it has a large number of deep energy level defects, leading to severe carrier recombination. The construction of a heterojunction is a common way to resolve this problem. However, the conventional heterojunction system inevitably introduces interface defects. Herein, we employ in situ synthesis to epitaxially grow In 2 Se 3 nanosheets on Sb 2 Se 3 nanorods and form In-Sb covalent interfacial bonds. This petal-shaped heterostructure reduced interface defects and enhanced the efficiency of carrier separation and transport. In this work, the photocurrent density in the proposed Sb 2 Se 3 /In 2 Se 3 photocathode is 0.485 mA cm -2 at 0 V RHE , which is 30 times higher than that of pristine Sb 2 Se 3 and it has prominent long-term stability for 24 h without obvious decay. The results reveal that the synergy of the bidirectional built-in electric field constructed between In 2 Se 3 and Sb 2 Se 3 and the solid In-Sb interfacial bonds together build a high-efficiency transport channel for the photogenerated carriers that display enhanced photoelectrochemical (PEC) water-splitting performance. This work provides efficient guidance for reducing interface defects via the in situ synthesis and construction of interfacial bonds.
Keyphrases
  • visible light
  • perovskite solar cells
  • molecular dynamics simulations
  • dna methylation
  • oxidative stress
  • dna damage