Strain-induced power output enhancement in intrinsically stretchable organic solar cells

IF 35.4 1区 材料科学 Q1 CHEMISTRY, PHYSICAL Joule Pub Date : 2025-02-19 DOI:10.1016/j.joule.2024.11.009
Jin-Woo Lee , Eun Sung Oh , Seungbok Lee , Tan Ngoc-Lan Phan , Taek-Soo Kim , Jung-Yong Lee , John R. Reynolds , Bumjoon J. Kim
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Abstract

Intrinsically stretchable organic solar cells (IS-OSCs) are a promising class of wearable power sources. Although the power conversion efficiency (PCE) and mechanical stretchability of IS-OSCs have significantly improved, the current stretchability level still falls short of meeting the demands of wearable electronics. The power output (PCE × photoactive area) of these OSCs is a key figure of merit in determining their potential as power sources. However, the impact of stretching on changes in the photoactive area and the resulting power output has not been investigated. In this study, we construct highly stretchable and efficient photoactive systems by designing a polymer donor, PBET-TF. IS-OSCs based on PBET-TF maintain over 80% of their original PCE up to 50% strain (strain at PCE80% = 50%), which significantly outperforms the reference PBDB-TF-based IS-OSCs (strain at PCE80% = 11%). Importantly, for the first time, we demonstrate strain-induced power output increases in IS-OSCs using the developed PBET-TF-based photoactive systems.

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固有可拉伸有机太阳能电池的应变诱导功率输出增强
内在可拉伸有机太阳能电池(IS-OSCs)是一类很有前途的可穿戴电源。虽然IS-OSCs的功率转换效率(PCE)和机械拉伸性能有了显著提高,但目前的拉伸水平仍不能满足可穿戴电子产品的需求。这些OSCs的输出功率(PCE ×光活性面积)是决定其作为电源潜力的关键指标。然而,拉伸对光活性区变化和由此产生的功率输出的影响尚未被研究。在这项研究中,我们通过设计聚合物供体PBET-TF来构建高拉伸和高效的光活性系统。基于pbeta - tf的IS-OSCs在50%应变(PCE80% = 50%应变)下仍能保持其原始PCE的80%以上,显著优于参考的基于pbdb - tf的IS-OSCs (PCE80% = 11%应变)。重要的是,我们首次证明了使用开发的pbet - tf光活性系统在IS-OSCs中应变诱导的功率输出增加。
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来源期刊
Joule
Joule Energy-General Energy
CiteScore
53.10
自引率
2.00%
发文量
198
期刊介绍: Joule is a sister journal to Cell that focuses on research, analysis, and ideas related to sustainable energy. It aims to address the global challenge of the need for more sustainable energy solutions. Joule is a forward-looking journal that bridges disciplines and scales of energy research. It connects researchers and analysts working on scientific, technical, economic, policy, and social challenges related to sustainable energy. The journal covers a wide range of energy research, from fundamental laboratory studies on energy conversion and storage to global-level analysis. Joule aims to highlight and amplify the implications, challenges, and opportunities of novel energy research for different groups in the field.
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