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通过超快脉冲光抑制胶体量子点固体中的热诱导表面陷阱

Suppression of Thermally Induced Surface Traps in Colloidal Quantum Dot Solids via Ultrafast Pulsed Light.

作者信息

Lee Eon Ji, Lee Wonjong, Yun Tae Ho, You Hyung Ryul, Kim Hae Jeong, Yu Han Na, Kim Soo-Kwan, Kim Younghoon, Ahn Hyungju, Lim Jongchul, Yim Changyong, Choi Jongmin

机构信息

Department of Energy Science and Engineering, Daegu Gyeongbuk Institute of Science and Technology (DGIST), 333 Techno Jungang-Daero, Hyeonpung-Eup, Dalseong-Gun, Daegu, 42988, Republic of Korea.

Graduate School of Energy Science and Technology, Chungnam National University (CNU), 99, Daehak-ro, Yuseong-gu, Daejeon, 34134, Republic of Korea.

出版信息

Small. 2024 Sep;20(36):e2400380. doi: 10.1002/smll.202400380. Epub 2024 Apr 2.

Abstract

Thermal annealing (TA) of colloidal quantum dot (CQD) films is considered an important process for recent high-performing CQD solar cells (SCs) due to its beneficial effects on CQD solids, including enhanced electrical conductivity, denser packing of CQD films, and the removal of organic residues and solvents. However, the conventional TA for CQDs, which requires several  minutes, leads to hydroxylation and oxidation on the CQD surface, resulting in the formation of trap states and a subsequent decline in SC performance. To address these challenges, this study introduces a flashlight annealing (FLA) technique that significantly reduces the annealing time to the millisecond scale. Through the FLA approach, it successfully suppressed hydroxylation and oxidation, resulting in decreased trap states within the CQD solids while simultaneously preserving their charge transport properties. As a result, CQD SCs treated with FLA exhibited a notable improvement, achieving an open-circuit voltage of 0.66 V compared to 0.63 V in TA-treated devices, leading to an increase in power conversion efficiency from 12.71% to 13.50%.

摘要

对于近期高性能的胶体量子点(CQD)太阳能电池(SCs)而言,胶体量子点薄膜的热退火(TA)被视为一个重要过程,因为它对CQD固体有诸多有益影响,包括增强电导率、使CQD薄膜堆积更致密,以及去除有机残留物和溶剂。然而,传统的CQD热退火需要几分钟时间,会导致CQD表面发生羟基化和氧化,从而形成陷阱态并致使太阳能电池性能随后下降。为应对这些挑战,本研究引入了一种闪光退火(FLA)技术,该技术可将退火时间大幅缩短至毫秒级。通过闪光退火方法,成功抑制了羟基化和氧化,减少了CQD固体内的陷阱态,同时保留了它们的电荷传输特性。结果,经闪光退火处理的CQD太阳能电池表现出显著改善,开路电压达到0.66 V,而热退火处理的器件为0.63 V,功率转换效率从12.71%提高到了13.50%。

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