量子点
纳米技术
材料科学
分解水
氢
太阳能
制氢
可持续能源
纳米晶
太阳能转换
二极管
工程物理
电荷(物理)
发光二极管
光伏系统
计算机科学
光电子学
带隙
材料设计
表面工程
能量转换
能量(信号处理)
高效能源利用
光电化学电池
新兴技术
纳米结构
领域(数学)
光电化学
作者
Hyo Cheol Lee,Su‐Il In
出处
期刊:Solar RRL
[Wiley]
日期:2026-01-01
卷期号:10 (1)
被引量:2
标识
DOI:10.1002/solr.202500928
摘要
The transition to sustainable energy requires efficient technologies for solar‐driven hydrogen production. Quantum dots (QDs), with size‐tunable bandgaps and favorable interfacial properties, significantly enhance photoelectrochemical (PEC) water splitting by enabling broad‐spectrum light harvesting, optimized band alignment, and improved charge separation. However, QD design strategies for PEC systems remain less developed compared to those for light‐emitting diodes and solar cells, constrained by incomplete understanding of interfacial photophysics, limited exploration of low‐dimensional nanocrystals (1D/2D), and the absence of AI‐assisted optimization. This review provides a comprehensive overview of material design strategies for QDs in PEC hydrogen production, encompassing fundamental principles, established approaches, and recent advances in both heavy‐metal‐based and nontoxic systems. Particular attention is given to emerging paradigms such as dimensional control and AI‐driven optimization, which enable predictive modeling, accelerated synthesis, and performance tuning beyond conventional trial‐and‐error methods. Finally, we address critical challenges—including stability, toxicity, and scalability—and outline future directions for achieving efficient, sustainable QD‐based PEC systems suitable for practical and economically viable commercialization.
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