杂原子
化学
带隙
聚合物太阳能电池
噻吩
聚合物
有机太阳能电池
共轭体系
轨道能级差
有机半导体
有机电子学
光伏系统
光电子学
光化学
高分子化学
材料科学
有机化学
晶体管
分子
戒指(化学)
电压
物理
生物
量子力学
生态学
作者
Raja Shahid Ashraf,Iain Meager,Mark Nikolka,Mindaugas Kirkus,Miquel Planells,Bob C. Schroeder,Sarah Holliday,Michael Hurhangee,Christian B. Nielsen,Henning Sirringhaus,Iain McCulloch
摘要
The design, synthesis, and characterization of a series of diketopyrrolopyrrole-based copolymers with different chalcogenophene comonomers (thiophene, selenophene, and tellurophene) for use in field-effect transistors and organic photovoltaic devices are reported. The effect of the heteroatom substitution on the optical, electrochemical, and photovoltaic properties and charge carrier mobilities of these polymers is discussed. The results indicate that by increasing the size of the chalcogen atom (S < Se < Te), polymer band gaps are narrowed mainly due to LUMO energy level stabilization. In addition, the larger heteroatomic size also increases intermolecular heteroatom-heteroatom interactions facilitating the formation of polymer aggregates leading to enhanced field-effect mobilities of 1.6 cm(2)/(V s). Bulk heterojunction solar cells based on the chalcogenophene polymer series blended with fullerene derivatives show good photovoltaic properties, with power conversion efficiencies ranging from 7.1-8.8%. A high photoresponse in the near-infrared (NIR) region with excellent photocurrents above 20 mA cm(-2) was achieved for all polymers, making these highly efficient low band gap polymers promising candidates for use in tandem solar cells.
科研通智能强力驱动
Strongly Powered by AbleSci AI