材料科学
量子点
光电流
混合太阳能电池
能量转换
光电子学
能量转换效率
量子点太阳电池
带隙
化学能
介孔材料
纳米技术
可再生能源
聚合物太阳能电池
太阳能
化学
物理
电气工程
工程类
催化作用
有机化学
生物化学
热力学
作者
Jae-Yup Kim,Youn Jeong Jang,Jongwoo Park,Jeehye Kim,Jin Soo Kang,Dong Young Chung,Yung‐Eun Sung,Changhee Lee,Jae Sung Lee,Min Jae Ko
标识
DOI:10.1016/j.apcatb.2018.01.041
摘要
Abstract Among the various renewable sources of energy, solar energy conversion systems have been regarded as a promising way to satisfy the growing energy demand. For superior solar energy conversion performance, it is important to utilize efficient photosensitizers that have excellent light-harvesting capability. In this regard, quantum dots (QDs) are promising photosensitizer candidates owing to their high absorption coefficient, band gap tunability, and potential multiple exciton generation. Here, we report an effective and straightforward approach to improve the loadings of nanocomposite PbS/CdS QDs in a mesoporous electrode, for highly efficient solar energy conversion. By controlling the surface charge of TiO2 during the successive ionic layer adsorption and reaction process, both the PbS and CdS QD loadings are distinctly increased, leading to a highly enhanced light-harvesting capability of the photoelectrodes. This enhancement is effectively applied not only for solar-to-electrical but also for solar-to-chemical energy conversion, resulting in a ∼33% increased conversion efficiency of the QD solar cells and an unprecedented photocurrent of 22.1 mA/cm2 (at 0.6 V vs. RHE) for hydrogen production from photoelectrochemical water splitting. These results provide significant insight into the application of QD photosensitizers in solar energy conversion.
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