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首页> 外文期刊>Advanced Optical Materials >Improved Mechanical Durability of High-Performance OPVs Using Semi-Interpenetrating Networks
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Improved Mechanical Durability of High-Performance OPVs Using Semi-Interpenetrating Networks

机译:使用半互穿网络改善高性能OPV的机械耐久性

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摘要

Organic photovoltaic (OPV) devices offer a number of unique advantages over conventional single crystal silicon solar cells, such as simple and low-cost fabrication, significantly reduced weight, high flexibility, and semitransparency. However, OPV devices exhibit poor durability to mechanical deformations. Here, the use of an elastic semi-interpenetrating network is studied to improve the mechanical durability of the active layer of OPV devices based on the high-performance poly[(2,6-(4,8-bis(5-(2-ethylhexyl-3-fluoro)thiophen-2-yl)-benzo[1,2-b:4,5-b ']dithiophene))-alt-(5,5-(1 ',3 '-di-2-thienyl-5 ',7 '-bis(2-ethylhexyl)benzo[1 ',2 '-c:4 ',5 '-c ']dithiophene-4,8-dione)]:2,2 '-[[6,6,12,12-tetrakis(4-hexylphenyl)-6,12-dihydrodithieno[2,3-d:2 ',3 '-d ']-s-indaceno[1,2-b:5,6-b ']dithiophene-2,8-diyl]bis[methylidyne(3-oxo-1H-indene-2,1(3H)-diylidene)]]bis[propanedinitrile] donor:acceptor blend (PBDBT-2F:ITIC). The elastic interpenetrating network is synthesized in situ through the UV photoinitiated crosslinking of thiol-ene additives in the active layer. The effects of strain as a function of bending on the network-stabilized active layer structure are systematically investigated. The elastic interpenetrating network suppresses crack formation and improves durability to high-curvature and repeated bending deformations. Performance measurements show that network-stabilized devices outperform pristine devices above a critical bending strain and number of bending deformations. The photovoltaic performance in general decreases with the increase in the network content, and the best performing devices are obtained using network forming reagents that are most compatible with the donor:acceptor system. This work describes an effective route to flexible devices using semi-interpenetrating polymer networks and provides insight into the design of the networks to maximize photovoltaic performance.
机译:有机光伏(OPV)器件提供多种独特的优势,与传统的单晶硅太阳能电池,如简单且低成本的制造,显着减轻重量,高柔韧性和半昏倒。然而,OPV器件对机械变形具有较差的耐用性。这里,研究了弹性半互穿网络的使用,以改善基于高性能多的OPV器件层的机械耐久性[(2,6-(4,8-双(5-(2-)乙基己基-3-氟)噻吩-2-基) - 苯并[1,2-B:4,5-B']二噻吩) - ALT-(5,5-(1',3'-Di-2- Thienyl-5',7'-bis(2-乙基己基)苯并[1',2'-c:4',5'-C']二噻吩-4,8-​​Dione)]:2,2' - [[ 6,6,12,12-四(4-己基苯基)-6,12-二氢吡上噻吩[2,3-D:2',3'-D'] -S-Indaceno [1,2-B:5,6 -B']二噻吩-2,8-二基] BIS [甲基甲基 - 1H-茚-2,1(3H) - 二甲苯)]] BIS [PBDANEDITLILY]供体:受体混合物(PBDBT-2F:ITIC) 。通过活性层中的硫代烯添加剂的UV光灭绝的交联,原位合成弹性互穿网络。系统地研究了作为弯曲对网络稳定的有源层结构弯曲的功能的影响。弹性互穿网络抑制裂缝形成并提高高曲率和重新的耐用性泥浆弯曲变形。性能测量表明,网络稳定装置优于高于临界弯曲应变的原始装置和弯曲变形的数量。随着网络内容的增加,光伏性能随着网络内容的增加而降低,并且使用与施主系统最兼容的网络形成试剂获得最佳性能的装置。这项工作描述了使用半互穿聚合物网络的灵活设备的有效路线,并对网络设计的洞察力来实现最大化光伏性能。

著录项

  • 来源
    《Advanced Optical Materials》 |2020年第18期|2000516.1-2000516.9|共9页
  • 作者单位

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA|Houston Community Coll West Houston Ctr Sci & Engn MC 1524H 2811 Hayes Rd Houston TX 77082 USA;

    Rice Univ Shared Equipment Author 6100 Main St Houston TX 77005 USA;

    Houston Community Coll West Houston Ctr Sci & Engn MC 1524H 2811 Hayes Rd Houston TX 77082 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Univ Houston Dept Elect & Comp Engn 4800 Calhoun Rd Houston TX 77004 USA|Univ Houston Texas Ctr Superconduct 4800 Calhoun Rd Houston TX 77004 USA;

    Univ Houston Dept Elect & Comp Engn 4800 Calhoun Rd Houston TX 77004 USA|Univ Houston Texas Ctr Superconduct 4800 Calhoun Rd Houston TX 77004 USA|Univ Houston Dept Mat Sci & Engn 4800 Calhoun Rd Houston TX 77004 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA;

    Rice Univ Dept Chem & Biomol Engn 6100 Main St MS-362 Houston TX 77005 USA|Rice Univ Dept Mat Sci & Nanoengn 6100 Main St MS-325 Houston TX 77005 USA;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    bending; crosslinked active layer; mechanical stability; organic photovoltaics;

    机译:弯曲;交联有源层;机械稳定性;有机光伏;

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