Dutt V G Vasavi, Akhil Syed, Mishra Nimai
Department of Chemistry, SRM University-AP, Amaravati, Neerukonda, Guntur(Dt), Andhra Pradesh, 522240, India.
Nanoscale. 2021 Sep 2;13(34):14442-14449. doi: 10.1039/d1nr03916d.
Cesium lead halide perovskite nanocrystals (CsPbX NCs) have been the flourishing area of research in the field of photovoltaic and optoelectronic applications because of their excellent optical and electronic properties. However, they suffer from low stability and deterioration of photoluminescence (PL) properties post-synthesis. In this work, we demonstrate that incorporating an additional ligand can further enhance the optical properties and stability of NCs. Here, we introduced phthalimide as a new surface passivation ligand into the oleic acid/oleylamine system to get near-unity photoluminescence quantum yield (PLQY) of CsPbBr and CsPbI perovskite NCs. Phthalimide passivation dramatically improves the stability of CsPbCl, CsPbBr, and CsPbI NCs under ambient light and UV light. The PL intensity was recorded for one year, which showed a dramatic improvement for CsPbBr NCs. Nearly 11% of PL can be retained even after one year with phthalimide passivation. CsPbCl NCs exhibit 3 times higher PL with phthalimide and retain 12% PL intensity even after two months, while PL of as-synthesized NCs completely diminishes. Under continuous UV light illumination, the PL intensity of phthalimide passivated NCs is well preserved, while the as-synthesized NCs exhibit negligible PL emission in 2 days. About 40% and 25% of initial PL is preserved for CsPbBr and CsPbCl NCs in the presence of phthalimide. CsPbI NCs with phthalimide exhibit PL even after 2 days, while PL for as-synthesized NCs rapidly declined in the first 10 h. The presence of phthalimide in CsPbI NCs could maintain stability even after a week, while the as-synthesized NCs underwent a transition to the non-luminescent phase within 4 days. Furthermore, blue, green, yellow, and red-emitting diodes using CsPbClBr, CsPbBr, CsPbBrI, CsPbI NCs, respectively, are fabricated by drop-casting NCs onto blue LED lights, which show great potential in the field of display and lighting technologies.
卤化铯铅钙钛矿纳米晶体(CsPbX NCs)因其优异的光学和电学性质,一直是光伏和光电子应用领域蓬勃发展的研究热点。然而,它们存在稳定性低以及合成后光致发光(PL)性能退化的问题。在这项工作中,我们证明引入额外的配体可以进一步增强纳米晶体的光学性质和稳定性。在此,我们将邻苯二甲酰亚胺作为一种新的表面钝化配体引入油酸/油胺体系,以获得CsPbBr和CsPbI钙钛矿纳米晶体接近单位的光致发光量子产率(PLQY)。邻苯二甲酰亚胺钝化显著提高了CsPbCl、CsPbBr和CsPbI纳米晶体在环境光和紫外光下的稳定性。对PL强度进行了为期一年的记录,结果表明CsPbBr纳米晶体有显著改善。经过邻苯二甲酰亚胺钝化后,即使一年后仍能保留近11%的PL。CsPbCl纳米晶体在使用邻苯二甲酰亚胺时PL提高了3倍,即使两个月后仍保留12%的PL强度,而合成后的纳米晶体的PL则完全消失。在连续紫外光照射下,邻苯二甲酰亚胺钝化的纳米晶体的PL强度得到很好的保留,而合成后的纳米晶体在2天内PL发射可忽略不计。在邻苯二甲酰亚胺存在下,CsPbBr和CsPbCl纳米晶体分别保留了约40%和25%的初始PL。含有邻苯二甲酰亚胺的CsPbI纳米晶体即使在2天后仍表现出PL,而合成后的纳米晶体在最初的10小时内PL迅速下降。CsPbI纳米晶体中邻苯二甲酰亚胺的存在即使在一周后仍能保持稳定性,而合成后的纳米晶体在4天内转变为非发光相。此外,通过将纳米晶体滴铸到蓝色LED灯上,分别制备了使用CsPbClBr、CsPbBr、CsPbBrI、CsPbI纳米晶体的蓝色、绿色、黄色和红色发光二极管,它们在显示和照明技术领域显示出巨大潜力。