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 Materials Processing and Die and Mould Technology, School of Materials Science and Engineering, Huazhong University of Science and Technology, Wuhan, 430074, P. R. China.
Adv Sci (Weinh). 2022 Oct;9(30):e2203662. doi: 10.1002/advs.202203662. Epub 2022 Sep 1.
2D organic molecular crystals (2DOMCs) are promising materials for the fabrication of high-performance optoelectronic devices. However, the growth of organic molecules into 2DOMCs remains a challenge because of the difficulties in controlling their self-assembly with a preferential orientation in solution-process crystallization. Herein, fullerene is chosen as a model molecule to develop a supramolecular gel crystallization approach to grow large-area 2DOMCs by controlling the perfect arrangement on the {220} crystal plane with the assistance of a gelated solvent. In this case, the gel networks provide tuneable confined spaces to control the crystallization kinetics toward the growth of dominant crystal faces by their inhibiting motions of solvent or solute molecules to enable the growth of perfect crystals at appropriate nucleation rates. As a result, a large-area fullerene 2DOMC is produced successfully and its corresponding device on a flexible substrate exhibits excellent bendable properties and ultra-high weak light detection ability (2.9 × 10 Jones) at a 10 V bias upon irradiation with 450 nm incident light. Moreover, its photoelectric properties remain unchanged after 200 cycles of bending at angles of 45, 90, and 180°. These results can be extended to the growth of other 2DOMCs for potentially fabricating advanced organic (opto)electronics.
二维有机分子晶体(2DOMCs)是制造高性能光电设备的有前途的材料。然而,由于在溶液处理结晶过程中难以控制有机分子的自组装具有优先取向,因此将有机分子生长成 2DOMCs 仍然是一个挑战。在这里,富勒烯被选为模型分子,通过控制在凝胶化溶剂辅助下在 {220} 晶面上的完美排列,开发了超分子凝胶结晶方法来生长大面积 2DOMCs。在这种情况下,凝胶网络提供了可调谐的受限空间,通过抑制溶剂或溶质分子的运动来控制晶体生长的动力学,从而以适当的成核速率实现主要晶面的生长。结果,成功制备了大面积富勒烯 2DOMC,其相应的柔性衬底器件在 450nm 入射光照射下,在 10V 偏压下表现出优异的可弯曲性能和超高弱光检测能力(2.9×10 琼斯)。此外,在 45°、90°和 180°弯曲 200 次循环后,其光电性能保持不变。这些结果可以扩展到其他 2DOMCs 的生长,以潜在地制造先进的有机(光电)电子器件。