异质结
宽带
材料科学
吸收(声学)
纳米技术
太阳能
光子上转换
光催化
可再生能源
光电子学
接口(物质)
计算机科学
光伏系统
高能
材料选择
工程物理
高效能源利用
合理设计
航程(航空)
太阳能转换
能量(信号处理)
选择(遗传算法)
作者
Zhaoyu Ma,Jiaming Fan,Yuxi Xie,Xiaoyan Cai,Liang Mao,Shiming Wu,Yan Wang,Guo Chen,Junying Zhang
标识
DOI:10.1002/adsu.202501617
摘要
ABSTRACT Artificial photosynthesis systems that convert solar energy into storable energy have aroused great interest. However, it is generally challenging for a single‐component material to meet the requirements for a highly efficient photocatalyst, such as broadband light absorption and effective charge‐carrier separation. Heterostructures, which integrate the advantages of multiple materials, offer a promising strategy to overcome the limitations of individual components. Accordingly, designing heterostructures with broadband absorption has emerged as an effective approach to enhancing photocatalytic performance. This review comprehensively overviews heterostructures fabricated by incorporating light absorbers, including narrow‐bandgap semiconductors, localized surface plasmon, and upconversion systems. We compare the underlying mechanisms through which these heterostructures broaden the absorption range and promote charge‐carrier separation, with particular emphasis on the critical role of interface design. Furthermore, we discuss material selection and modification strategies for various photocatalytic applications. This review aims to offer valuable insights for the rational design of highly active, broadband‐responsive heterostructures to achieve efficient solar energy conversion and environmental remediation.
科研通智能强力驱动
Strongly Powered by AbleSci AI