Liu Kaiqiang, Gao Sheng, Zheng Zhi, Deng Xinling, Mukherjee Somnath, Wang Suansuan, Xu Hua, Wang Jinqiang, Liu Jianfei, Zhai Tianyou, Fang Yu
Key Laboratory of Applied Surface and Colloid Chemistry, Ministry of Education, School of Chemistry and Chemical Engineering, Shaanxi Normal University, Xi'an, 710119, P. R. China.
State Key Laboratory of Material Processing and Die and Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, P. R. China.
Adv Mater. 2019 May;31(18):e1808254. doi: 10.1002/adma.201808254. Epub 2019 Mar 15.
As a superstar organic semiconductor, fullerene (C ) is versatile in nature for its multiple photoelectric applications. However, owing to its natural 0D structure, a challenge still remains unbeaten as to growth of 1D fullerene crystals with tunable sizes. Herein, reported is an efficient approach to grow C as super-long crystalline fibers with tunable lengths and diameters in supramolecular gel by synergic changes of anti-solvent, gel length, crystallization time or fullerene concentration. As a result, the crystalline C fibers can be modulated to as long as 70 mm and 70 000 in their length-to-width ratio. In this case, the gel 3D network provides spatial confinements for the growth of 1D crystal along the directional dispersion of anti-solvent. The fabricated fullerene device exhibits high responsivity (2595.6 mA W ) and high specific detectivity (2.7 × 10 Jones) at 10 V bias upon irradiation of 400 nm incident light. The on/off ratio and its quantum efficiency are near to 540 and about 800%, respectively, and importantly, its photoelectric property remains very stable after storage in air for six months. Therefore, spatially confined growth of fullerene in supramolecular gels will be another crucial strategy to synthesize 1D semiconductor crystals for photoelectrical device applications in near future.
作为一种超级巨星有机半导体,富勒烯(C )因其多种光电应用而具有多种用途。然而,由于其天然的零维结构,在生长具有可调尺寸的一维富勒烯晶体方面仍然存在一个尚未克服的挑战。在此,报道了一种有效的方法,通过反溶剂、凝胶长度、结晶时间或富勒烯浓度的协同变化,在超分子凝胶中生长出具有可调长度和直径的超长结晶纤维状C 。结果,结晶的C 纤维可以被调制到长度达到70毫米,长宽比达到70000。在这种情况下,凝胶三维网络为一维晶体沿着反溶剂的定向扩散生长提供了空间限制。所制备的富勒烯器件在400纳米入射光照射下,在10伏偏压下表现出高响应度(2595.6毫安/瓦)和高比探测率(2.7×10琼斯)。其开/关比和量子效率分别接近540和约800%,重要的是,在空气中储存六个月后其光电性能仍然非常稳定。因此,在超分子凝胶中对富勒烯进行空间限制生长将是在不久的将来合成用于光电器件应用的一维半导体晶体的另一个关键策略。