Meng Dong, Wang Rui, Lin Janice B, Yang Jonathan Lee, Nuryyeva Selbi, Lin Yu-Che, Yuan Shuai, Wang Zhao-Kui, Zhang Elizabeth, Xiao Chengyi, Zhu Danlei, Jiang Lang, Zhao Yepin, Li Zhenxing, Zhu Chenhui, Houk Kendall N, Yang Yang
Department of Materials Science and Engineering and California NanoSystems Institute, University of California, Los Angeles, Los Angeles, CA, 90095, USA.
Department of Chemistry and Biochemistry, University of California, Los Angeles, Los Angeles, CA, 90095, USA.
Adv Mater. 2021 Mar;33(12):e2006120. doi: 10.1002/adma.202006120. Epub 2021 Feb 15.
The synthesis of a new molecule, SFIC-Cl, is reported, which features enhanced π-electron delocalization by spiroconjugation and narrowed bandgap by chlorination. SFIC-Cl is integrated into a single-crystal transistor (OFET) and organic light-emitting diode (OLED). The material demonstrates remarkable transport abilities across various solution-processed OFETs and retains efficient radiance in a near-infrared OLED emitting light at 700 nm. Furthermore, the intermolecular multi-dimensional connection of SFIC-Cl enables the fabrication of a single-component large-area (2 × 2 cm ) near-infrared OLED by spin-coating. The SFIC-Cl-acceptor-based solar cell shows excellent power conversion efficiency of 10.16% resulting from the broadened and strong absorption and well-matched energy levels. The study demonstrates that chlorinated spiroconjugated fused systems offer a novel direction toward the development of high-performance organic semiconductor materials for hybrid organic electronic devices.
据报道,一种新分子SFIC-Cl被合成出来,它通过螺共轭增强了π电子离域,并通过氯化作用缩小了带隙。SFIC-Cl被集成到单晶晶体管(OFET)和有机发光二极管(OLED)中。该材料在各种溶液处理的OFET中展现出卓越的传输能力,并在发射700纳米近红外光的OLED中保持高效发光。此外,SFIC-Cl的分子间多维连接使得通过旋涂法制造单组分大面积(2×2平方厘米)近红外OLED成为可能。基于SFIC-Cl受体的太阳能电池由于吸收拓宽且强烈以及能级匹配良好,展现出10.16%的优异功率转换效率。该研究表明,氯化螺共轭稠合体系为开发用于混合有机电子器件的高性能有机半导体材料提供了一个新方向。