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氧化锌纳米线形态对互穿体相异质结量子点太阳能电池性能影响的综述

A Review on the Effects of ZnO Nanowire Morphology on the Performance of Interpenetrating Bulk Heterojunction Quantum Dot Solar Cells.

作者信息

Xing Meibo, Wang Longxiang, Wang Ruixiang

机构信息

Beijing Engineering Research Centre of Sustainable Energy and Buildings, School of Environment and Energy Engineering, Beijing University of Civil Engineering and Architecture, Beijing 100044, China.

出版信息

Nanomaterials (Basel). 2021 Dec 30;12(1):114. doi: 10.3390/nano12010114.

Abstract

Interpenetrating bulk heterojunction (IBHJ) quantum dot solar cells (QDSCs) offer a direct pathway for electrical contacts to overcome the trade-off between light absorption and carrier extraction. However, their complex three-dimensional structure creates higher requirements for the optimization of their design due to their more difficult interface defect states control, more complex light capture mechanism, and more advanced QD deposition technology. ZnO nanowire (NW) has been widely used as the electron transport layer (ETL) for this structure. Hence, the optimization of the ZnO NW morphology (such as density, length, and surface defects) is the key to improving the photoelectric performance of these SCs. In this study, the morphology control principles of ZnO NW for different synthetic methods are discussed. Furthermore, the effects of the density and length of the NW on the collection of photocarriers and their light capture effects are investigated. It is indicated that the NW spacing determines the transverse collection of electrons, while the length of the NW and the thickness of the SC often affect the longitudinal collection of holes. Finally, the optimization strategies for the geometrical morphology of and defect passivation in ZnO NWs are proposed to improve the efficiency of IBHJ QDSCs.

摘要

互穿体相异质结(IBHJ)量子点太阳能电池(QDSC)为电接触提供了一条直接途径,以克服光吸收与载流子提取之间的权衡。然而,由于其界面缺陷态控制更困难、光捕获机制更复杂以及量子点沉积技术更先进,其复杂的三维结构对其设计优化提出了更高要求。氧化锌纳米线(ZnO NW)已被广泛用作这种结构的电子传输层(ETL)。因此,优化ZnO NW的形貌(如密度、长度和表面缺陷)是提高这些太阳能电池光电性能的关键。在本研究中,讨论了不同合成方法下ZnO NW的形貌控制原理。此外,研究了纳米线的密度和长度对光生载流子收集及其光捕获效果的影响。结果表明,纳米线间距决定了电子的横向收集,而纳米线的长度和太阳能电池的厚度通常会影响空穴的纵向收集。最后,提出了ZnO NW几何形貌和缺陷钝化的优化策略,以提高IBHJ QDSC的效率。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/c80e/8746555/1ec9a36b07ed/nanomaterials-12-00114-g003.jpg

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