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首页> 外文期刊>Beilstein journal of organic chemistry. >Effect of the π-conjugation length on the properties and photovoltaic performance of A–π–D–π–A type oligothiophenes with a 4,8-bis(thienyl)benzo[1,2-b:4,5-b′]dithiophene core
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Effect of the π-conjugation length on the properties and photovoltaic performance of A–π–D–π–A type oligothiophenes with a 4,8-bis(thienyl)benzo[1,2-b:4,5-b′]dithiophene core

机译:π-缀合长度对4,8-双(噻吩基)苯并[1,2-B:4,5-B'的A-π-D-π-A型低粒细胞性能和光伏性能的影响[1,2-B:4,5-B'。二噻吩核心

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摘要

Benzo[1,2- b :4,5- b ′]dithiophene (BDT) is an excellent building block for constructing π-conjugated molecules for the use in organic solar cells. In this paper, four 4,8-bis(5-alkyl-2-thienyl)benzo[1,2- b :4,5- b ′]dithiophene (TBDT)-containing A–π–D–π–A-type small molecules (COOP- n HT-TBDT, n = 1, 2, 3, 4), having 2-cyano-3-octyloxy-3-oxo-1-propenyl (COOP) as terminal group and regioregular oligo(3-hexylthiophene) (nHT) as the π-conjugated bridge unit were synthesized. The optical and electrochemical properties of these compounds were systematically investigated. All these four compounds displayed broad absorption bands over 350–600 nm. The optical band gap becomes narrower (from 1.94 to 1.82 eV) and the HOMO energy levels increased (from ?5.68 to ?5.34 eV) with the increase of the length of the π-conjugated bridge. Organic solar cells using the synthesized compounds as the electron donor and PC61BM as the electron acceptor were fabricated and tested. Results showed that compounds with longer oligothiophene π-bridges have better power conversion efficiency and higher device stability. The device based on the quaterthiophene-bridged compound 4 gave a highest power conversion efficiency of 5.62% with a V OC of 0.93 V, J SC of 9.60 mA·cm?2, and a FF of 0.63.
机译:苯并[1,2-B:4,5- B']二噻吩(BDT)是用于构建用于在有机太阳能电池中使用的π-共轭分子的优异结构块。在本文中,四个4,8-双(5-烷基-2-噻吩基)苯并[1,2-B:4,5- B']二噻吩(TBDT) - 占A-π-D-π-A-型小分子(CoC-N HT-TBDT,N = 1,2,3,4),具有2-氰基-3-辛酰氧基-3-氧代-1-丙烯(COOP)作为末端基团和植物寡核苷酸(3-合成己烯酮)(NHT)作为π-共轭桥单元。系统地研究了这些化合物的光学和电化学性质。所有这四种化合物都显示出超过350-600nm的宽吸收带。光带隙变得较窄(从1.94到1.82eV),同性能水平随π-共轭桥的长度的增加而增加(来自Δ5.68至5.34eV)。有机太阳能电池使用合成化合物作为电子给体和PC 61 Bm,因为制成电子受体并测试。结果表明,具有较长寡噻吩π-桥的化合物具有更好的功率转换效率和更高的器件稳定性。基于Quatterthinene-桥接化合物4的器件,最高功率转换效率为5.62%,V oc 为0.93 V,J 为9.60 mA·cm ?2 ,和0.63的FF。

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