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类胡萝卜素与硅基添加剂对具有增强弹性的光氧化稳定有机太阳能电池的协同效应。

Synergistic effect of carotenoid and silicone-based additives for photooxidatively stable organic solar cells with enhanced elasticity.

作者信息

Prete Michela, Ogliani Elisa, Bregnhøj Mikkel, Lissau Jonas Sandby, Dastidar Subham, Rubahn Horst-Günter, Engmann Sebastian, Skov Anne Ladegaard, Brook Michael A, Ogilby Peter R, Printz Adam, Turkovic Vida, Madsen Morten

机构信息

SDU NanoSYD, Mads Clausen Institute, University of Southern Denmark, Alsion 2, 6400 Sønderborg, Denmark.

Department of Chemical and Biochemical Engineering, Technical University of Denmark, Søltofts Plads, 2800, Kgs. Lyngby, Denmark.

出版信息

J Mater Chem C Mater. 2021;35. doi: 10.1039/D1TC01544C.

Abstract

Photochemical and mechanical stability are critical in the production and application of organic solar cells. While these factors can individually be improved using different additives, there is no example of studies on the combined effects of such additive-assisted stabilization. In this study, the properties of PTB7:[70]PCBM organic solar cells are studied upon implementation of two additives: the carotenoid astaxanthin (AX) for photochemical stability and the silicone polydimethylsiloxane (PDMS) for improved mechanical properties. A newly designed additive, AXcPDMS, based on astaxanthin covalently bonded to PDMS was also examined. Lifetime tests, produced in ISOS-L-2 conditions, reveal an improvement in the accumulated power generation (APG) of 10% with pure AX, of 90% when AX is paired with PDMS, and of 140% when AXcPDMS is added in the active layer blend, as compared to the control devices. Singlet oxygen phosphorescence measurements are utilized to study the ability of AX and AXcPDMS to quench singlet oxygen and its precursors in the films. The data are consistent with the strong stabilization effect of the carotenoids. While AX and AXcPDMS are both efficient photochemical stabilizers, the improvement in device stability observed in the presence of AXcPDMS is likely due to a more favorable localization of the stabilizer within the blend. The mechanical properties of the active layers were investigated by tensile testing and cohesive fracture measurements, showing a joint improvement of the photooxidative stability and the mechanical properties, thus yielding organic solar cell devices that are promising for flexible photovoltaic applications.

摘要

光化学稳定性和机械稳定性在有机太阳能电池的生产和应用中至关重要。虽然可以使用不同的添加剂分别改善这些因素,但尚无关于此类添加剂辅助稳定化综合效果的研究实例。在本研究中,研究了在添加两种添加剂后PTB7:[70]PCBM有机太阳能电池的性能:用于光化学稳定性的类胡萝卜素虾青素(AX)和用于改善机械性能的硅氧烷聚二甲基硅氧烷(PDMS)。还研究了一种新设计的基于与PDMS共价键合的虾青素的添加剂AXcPDMS。在ISOS-L-2条件下进行的寿命测试表明,与对照器件相比,纯AX使累积发电量(APG)提高了10%,AX与PDMS配对时提高了90%,在活性层混合物中添加AXcPDMS时提高了140%。利用单线态氧磷光测量来研究AX和AXcPDMS淬灭薄膜中单线态氧及其前体的能力。数据与类胡萝卜素的强稳定作用一致。虽然AX和AXcPDMS都是有效的光化学稳定剂,但在存在AXcPDMS的情况下观察到的器件稳定性提高可能是由于稳定剂在混合物中更有利的定位。通过拉伸测试和内聚断裂测量研究了活性层的机械性能,结果表明光氧化稳定性和机械性能共同提高,从而产生了有望用于柔性光伏应用的有机太阳能电池器件。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5cc/10091296/b98ebcb1025b/nihms-1872962-f0001.jpg

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