三元运算
光电流
量子点
制氢
光电解
材料科学
氢
带隙
光电化学
光电化学电池
光电子学
分解水
油胺
纳米技术
光化学
电解质
光催化
计算机科学
化学
纳米颗粒
电极
电化学
物理化学
催化作用
有机化学
电解
程序设计语言
生物化学
作者
Li Shi,Sung‐Mok Jung,Wook‐Jin Chung,Joo‐Won Seo,Hwapyong Kim,Soo Ik Park,Hyo Cheol Lee,Ji Su Han,Seung Beom Ha,In Young Kim,Su‐Il In,Jae‐Yup Kim,Jiwoong Yang
摘要
Abstract Heavy‐metal‐free ternary Cu–In–Se quantum dots (CISe QDs) are promising for solar fuel production because of their low toxicity, tunable band gap, and high light absorption coefficient. Although defects significantly affect the photophysical properties of QDs, the influence on photoelectrochemical hydrogen production is not well understood. Herein, we present the defect engineering of CISe QDs for efficient solar‐energy conversion. Lewis acid–base reactions between metal halide–oleylamine complexes and oleylammonium selenocarbamate are modulated to achieve CISe QDs with the controlled amount of Cu vacancies without changing their morphology. Among them, CISe QDs with In/Cu = 1.55 show the most outstanding photoelectrochemical hydrogen generation with excellent photocurrent density of up to 10.7 mA cm −2 (at 0.6 V RHE ), attributed to the suitable electronic band structures and enhanced carrier concentrations/lifetimes of the QDs. The proposed method, which can effectively control the defects in heavy‐metal‐free ternary QDs, offers a deeper understanding of the effects of the defects and provides a practical approach to enhance photoelectrochemical hydrogen generation.
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