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Highly Efficient Random Terpolymers for Photovoltaic Applications with Enhanced Absorption and Molecular Aggregation

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【作者】 Xiao-peng XuGuang-jun ZhangYun-zhe Zhao刘江Ying Li彭强

【Author】 Xiao-peng Xu;Guang-jun Zhang;Yun-zhe Zhao;Jiang Liu;Ying Li;Qiang Peng;Key Laboratory of Green Chemistry and Technology of Ministry of Education,College of Chemistry,State Key Laboratory of Polymer Materials Engineering,Sichuan University;Chengdu Green Energy and Green Manufacturing Technology R&D Center;

【机构】 Key Laboratory of Green Chemistry and Technology of Ministry of Education,College of Chemistry,State Key Laboratory of Polymer Materials Engineering,Sichuan UniversityChengdu Green Energy and Green Manufacturing Technology R&D Center

【摘要】 A series of copolymers, based on benzo[1,2-b:4,5-b′]dithiophene(BDT) as the electron donor and 2,1,3-benzothiadiazole(BT)/diketopyrrolo[3,4-c]pyrrole(DPP) as the electron acceptors, were synthesized for highly efficient polymer solar cells. By changing the BT/DPP ratio in the conjugated backbone, the absorption, energy levels, molecular aggregation and carrier mobility could be finely tuned. With increased DPP content, the absorption range was extended to the longer wavelength region with narrower bandgaps. The highest occupied molecular orbital(HOMO) levels were also raised up and the molecular aggregation was enhanced. The balance of these factors would afford a remarkable device performance enhancement. Polymer P3 with BT:DPP = 0.7:0.3(molar ratio) exhibited the highest power conversion efficiency(PCE) of 9.01%, with open circuit voltage(Voc) = 0.73 V, short current density(Jsc) = 18.45 m A·cm-2, and fill factor(FF) = 66.9%. The PCE value was improved by 48.7% compared to P1 and by 117.6% compared to P7, respectively, indicating a great potential in photovoltaic application.

【Abstract】 A series of copolymers, based on benzo[1,2-b:4,5-b′]dithiophene(BDT) as the electron donor and 2,1,3-benzothiadiazole(BT)/diketopyrrolo[3,4-c]pyrrole(DPP) as the electron acceptors, were synthesized for highly efficient polymer solar cells. By changing the BT/DPP ratio in the conjugated backbone, the absorption, energy levels, molecular aggregation and carrier mobility could be finely tuned. With increased DPP content, the absorption range was extended to the longer wavelength region with narrower bandgaps. The highest occupied molecular orbital(HOMO) levels were also raised up and the molecular aggregation was enhanced. The balance of these factors would afford a remarkable device performance enhancement. Polymer P3 with BT:DPP = 0.7:0.3(molar ratio) exhibited the highest power conversion efficiency(PCE) of 9.01%, with open circuit voltage(Voc) = 0.73 V, short current density(Jsc) = 18.45 m A·cm-2, and fill factor(FF) = 66.9%. The PCE value was improved by 48.7% compared to P1 and by 117.6% compared to P7, respectively, indicating a great potential in photovoltaic application.

【基金】 financially supported by the National Natural Science Foundation of China(Nos.51573107 and 21432005);the Youth Science and Technology Foundation of Sichuan Province(No.2013JQ0032);the Foundation of State Key Laboratory of Polymer Materials Engineering(sklpme2014-3-05);the Synergistic Innovation Joint Foundation of CAEPSCU(No.XTCX2014008);the Fundamental Research Funds for the Central Universities(Nos.2012SCU04B01 and YJ2011025)
  • 【文献出处】 Chinese Journal of Polymer Science ,高分子科学(英文版) , 编辑部邮箱 ,2017年02期
  • 【分类号】TM914.4;O633.5
  • 【被引频次】5
  • 【下载频次】22
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