Lu Po, Liu Anqi, Lu Min, Zhang Fujun, Sun Siqi, Liu Mingze, Wu Zhennan, Wang Xue, Dong Weinan, Qin Feisong, Gao Yanbo, Bai Xue, Zhang Yu
State Key Laboratory of Integrated Optoelectronics and College of Electronic Science and Engineering, Jilin University, Changchun, 130012, China.
Angew Chem Int Ed Engl. 2024 Feb 26;63(9):e202317376. doi: 10.1002/anie.202317376. Epub 2024 Jan 26.
Although colloidal perovskite nanocrystal (PNC) solution has exhibited near-unity photoluminescence quantum yield (PLQY), the luminance would be severely quenched when the PNC solution is assembled into thin films due to the agglomeration and fusion of NCs caused by the exfoliation of surface ligands and non-radiative Förster resonance energy transfer (FRET) from small to large particle sizes, which seriously affected the performances of light-emitting diodes (LEDs). Here, we used Guanidine thiocyanate (GASCN) and Sodium thiocyanate (NaSCN) to achieve effective CsPbI PNC surface reconstruction. Due to the strong coordination ability of these small molecules with the anions and cations on the surface of the PNCs, they can provide strong surface protection against PNC fusion during centrifugal purification process and repair the surface defects of PNCs, so that the original uniform size distribution of PNCs can be maintained and FRET between close-packed PNC films is effectively suppressed, which allows the emission characteristics of the films to be preserved. As a result, highly oriented, smooth and nearly defect-free high-quality PNC thin films are obtained, with PLQY as high as 95.1 %, far exceeding that of the original film, and corresponding LEDs exhibit a maximum external quantum efficiency of 24.5 %.
尽管胶体钙钛矿纳米晶体(PNC)溶液已展现出近乎单位的光致发光量子产率(PLQY),但当PNC溶液组装成薄膜时,由于表面配体脱落导致纳米晶体的团聚和融合以及从小粒径到大粒径的非辐射福斯特共振能量转移(FRET),亮度会严重猝灭,这严重影响了发光二极管(LED)的性能。在此,我们使用硫氰酸胍(GASCN)和硫氰酸钠(NaSCN)实现有效的CsPbI PNC表面重构。由于这些小分子与PNC表面的阴离子和阳离子具有很强的配位能力,它们能够在离心纯化过程中为PNC融合提供强大的表面保护,并修复PNC的表面缺陷,从而可以维持PNC原本均匀的尺寸分布,并有效抑制紧密堆积的PNC薄膜之间的FRET,使得薄膜的发光特性得以保留。结果,获得了高度取向、光滑且几乎无缺陷的高质量PNC薄膜,其PLQY高达95.1%,远超过原始薄膜,相应的LED表现出24.5%的最大外量子效率。