Pan Shuang, Zou Haiyang, Wang Aurelia C, Wang Zewei, Yu Jiwoo, Lan Chuntao, Liu Qiliang, Wang Zhong Lin, Lian Tianquan, Peng Juan, Lin Zhiqun
School of Materials Science and Engineering, Georgia Institute of Technology, Atlanta, GA, 30332, USA.
State Key Laboratory of Molecular Engineering of Polymers, Department of Macromolecular Science, Fudan University, Shanghai, 200438, China.
Angew Chem Int Ed Engl. 2020 Aug 24;59(35):14942-14949. doi: 10.1002/anie.202004912. Epub 2020 Jun 17.
Despite recent progress in producing perovskite nanowires (NWs) for optoelectronics, it remains challenging to solution-print an array of NWs with precisely controlled position and orientation. Herein, we report a robust capillary-assisted solution printing (CASP) strategy to rapidly access aligned and highly crystalline perovskite NW arrays. The key to the CASP approach lies in the integration of capillary-directed assembly through periodic nanochannels and solution printing through the programmably moving substrate to rapidly guide the deposition of perovskite NWs. The growth kinetics of perovskite NWs was closely examined by in situ optical microscopy. Intriguingly, the as-printed perovskite NWs array exhibit excellent optical and optoelectronic properties and can be conveniently implemented for the scalable fabrication of photodetectors.
尽管最近在用于光电子学的钙钛矿纳米线(NWs)制备方面取得了进展,但溶液印刷出具有精确控制位置和取向的NW阵列仍然具有挑战性。在此,我们报告了一种强大的毛细管辅助溶液印刷(CASP)策略,以快速获得排列整齐且高度结晶的钙钛矿NW阵列。CASP方法的关键在于通过周期性纳米通道的毛细管定向组装与通过可编程移动基板的溶液印刷相结合,以快速引导钙钛矿NW的沉积。通过原位光学显微镜对钙钛矿NW的生长动力学进行了仔细研究。有趣的是,印刷后的钙钛矿NW阵列表现出优异的光学和光电性能,并且可以方便地用于光探测器的可扩展制造。