首页> 外文会议>European Photovoltaic Solar Energy Conference and Exhibition >LOW BANDGAP COPOLYMERS WITH (ALKYLSULFANYL)BITHIOPHENE UNIT FOR EFFICIENT POLYMER SOLAR CELLS
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LOW BANDGAP COPOLYMERS WITH (ALKYLSULFANYL)BITHIOPHENE UNIT FOR EFFICIENT POLYMER SOLAR CELLS

机译:具有(烷基磺酰基)的低带隙共聚物,用于高效聚合物太阳能电池的二硫代丙烯烯单元

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Polymer solar cells have evolved as a promising cost-effective alternative to silicon-based ones. However, low efficiency of these plastic devices limits their feasibility for commercial use. The efficiencies of polymer photovoltaic cells got a major boost with the introduction of the bulk heterojunction (BHJ) configuration consisting of an interpenetrating network of electron donor and acceptor materials. Recently, benzodithiophene based polymers has been used as electron donors in polymer solar cells showing very promising properties such as an increasing charge transport and a red shift of the absorption spectra. In this work the synthesis, the spectroscopic and photovoltaic characterization of a copolymer based on (octylsulfanyl)bithiophene and benzo[1,2-b:4,5-b’]dithiophene units and a polymer based on (butylsulfanyl)bithiophene unit are reported. BHJ solar cells using these polymers as donor materials blended with [70]PCBM as acceptor were prepared and investigated. The geometry of the device is: glass/ITO/PEDOT:PSS/blend/Ca/Al. The electrical performances of the cells were compared in order to study the influence of the benzodithiophene unit on the polymer backbone. The power conversion efficiency of the best realized polymer solar cell is 2.3% under 100 mW/cm~2 AM 1.5G illumination.
机译:聚合物太阳能电池已经发展为对硅基硅的承诺成本有效的替代方案。然而,这些塑料装置的低效率限制了它们的商业用途的可行性。聚合物光伏电池的效率随着由电子供体和受体材料的互穿网络组成的散装异质结(BHJ)配置而获得了重大升压。最近,基于苯二噻吩基烯聚合物已被用作聚合物太阳能电池中的电子供体,其显示非常有前途的性质,例如增加电荷传输和吸收光谱的红色偏移。在这项工作中,基于(辛基磺酰基)二噻吩和苯并[1,2-B:4,5-B']二噻吩单元和基于(丁基磺酰基)二硫代烯单位的共聚物的合成,光谱和光伏表征。使用这些聚合物的BHJ太阳能电池作为将供体材料与[70] PCBM共混的供体,并进行研究。该装置的几何形状是:玻璃/ ITO / PEDOT:PSS / BLEND / CA / A1。比较细胞的电性能,以研究苯二噻吩单元对聚合物主链的影响。最佳实现的聚合物太阳能电池的功率转换效率为1.5mW / cm〜2 AM 1.5g照明的2.3%。

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