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A Dual‐Polythiophene Blending Strategy to Reduce the Efficiency‐Stability‐Cost Gap of Solar Cells

Qingchun QiFujian Key Laboratory of Novel Functional Textile Fibers and Materials Minjiang University Fuzhou 350108 ChinaJingjing WangSchool of Materials Science and Engineering Tianjin Key Laboratory of Molecular Optoelectronic Sciences Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin University Tianjin 300350 ChinaMengyuan GaoSchool of Materials Science and Engineering Tianjin Key Laboratory of Molecular Optoelectronic Sciences Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin University Tianjin 300350 ChinaHuizhen KeFujian Key Laboratory of Novel Functional Textile Fibers and Materials Minjiang University Fuzhou 350108 ChinaWenchao ZhaoCo‐Innovation Center of Efficient Processing and Utilization of Forest Resources College of Materials Science and Engineering Nanjing Forestry University Nanjing 210037 ChinaKai ZhangSchool of Materials Science and Engineering Tianjin Key Laboratory of Molecular Optoelectronic Sciences Collaborative Innovation Center of Chemical Science and Engineering (Tianjin) Tianjin University Tianjin 300350 ChinaSunsun LiKey Laboratory of Flexible Electronics (KLOFE) and Institute of Advanced Materials (IAM) School of Flexible Electronics (Future Technologies) Nanjing Tech University (Nanjing Tech) Nanjing 211816 ChinaChunyong HeInstitute of High Energy Physics Chinese Academy of Sciences (CAS) Beijing 100049 ChinaVakhobjon KuvondikovInstitute of Ion‐Plasma and Laser Technologies Uzbekistan Academy of Sciences 33, Durmon yuli Tashkent 100125 UzbekistanLong YeHubei Longzhong Laboratory Xiangyang 441000 China
Smalljournal2023en
ABI

Аннотация

Benefiting from the photovoltaic material innovation and delicate device optimization, high-efficiency solar cells employing polymeric materials are thriving. Reducing the gap of cost, efficiency, and stability is the critical challenge faced by the emerging solar cells such as organics, quantum dots and perovskites. Poly(3-alkylthiophene) demonstrates great potential in organic solar cells and quantum dot solar cells as the active layer or the hole transport layer due to its large scalability, excellent photoelectric performance, and favorable hydrophobicity. The present low efficiency and insufficient stability, restrict its commercial application. In this work, a facile strategy of blending two simple polythiophenes is put forward to manipulate the film microstructure and enhance the device efficiency and thermal stability of solar cells. The introduction of P3PT can improve the power conversion efficiency (PCE) of a benchmark cost-effective blend P3HT:O-IDTBR to 7.41%, and the developed ternary solar cells also exhibit increased thermal stability. More strikingly, the quantum dot solar cells with the dual-polythiophene hole transport layer achieve the highest PCE of 10.51%, which is among the topmost efficiencies for quantum dots/polythiophene solar cells. Together, this work provides an effective route to simultaneously optimize the device efficiency and thermal stability of solar cells.

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