登录

何成

教授

基本信息 / Basic Information

  • 博士生导师 硕士生导师
  • 电子邮箱:
  • 学历: 硕博连读
  • 学位: 博士
  • 学科: 材料科学与工程

论文成果

当前位置: 中文主页 - 科学研究 - 论文成果

Ultrafast carrier recombination in a BC6N/SnXY Z-scheme heterostructure for water splitting: insights from ground- and excited-state carrier dynamics

发布时间:2025-04-30
点击次数:
发布时间:
2025-04-30
论文名称:
Ultrafast carrier recombination in a BC6N/SnXY Z-scheme heterostructure for water splitting: insights from ground- and excited-state carrier dynamics
发表刊物:
Journal of Materials Chemistry A
摘要:
To obtain environmentally friendly and economically viable clean energy in a water-based future energy economy, direct Z-scheme heterostructure photocatalysts with overall water-splitting potential are generally favored. However, there are still many limitations in judging the carrier migration pattern when only the method of a conventional built-in electric field is used. Here, a novel approach that combines the direction of the built-in electric field with excited-state nonadiabatic molecular dynamics to determine the pattern of carrier migration inside the structure is proposed. The conclusions indicate that the timescale of nonadiabatic electron-hole migration ensures a Z-scheme carrier migration pattern within the heterostructure, while the orientation of the built-in electric field significantly accelerates the rate of recombination between weak redox capacity carriers. Meanwhile, the presence of inherent dipoles within the heterostructure leads to movement of band edges, thereby enhancing the redox ability for the hydrogen evolution reaction (HER) and effectively meeting the requirements of the half-reaction for the band edges. Furthermore, four-electron oxidation reaction steps exhibit superior water-splitting potential in a solvation environment compared to vacuum conditions. This study introduces an efficient strategy for determining carrier migration patterns within heterostructures and offers insights into the design of novel Z-scheme heterostructures.
合写作者:
Zong, JS ; He, C; Zhang, WX
卷号:
12, 18528-18536
页面范围:
12, 18528-18536
是否译文:
发表时间:
2024-07-23