Di Giacomo Alessio, Rodà Carmelita, Khan Ali Hossain, Moreels Iwan
Department of Chemistry, Ghent University, 9000 Ghent, Belgium.
Chem Mater. 2020 Nov 10;32(21):9260-9267. doi: 10.1021/acs.chemmater.0c03066. Epub 2020 Oct 21.
The typical synthesis protocol for blue-emitting CdSe nanoplatelets (NPLs) yields particles with extended lateral dimensions and large surface areas, resulting in NPLs with poor photoluminescence quantum efficiency. We have developed a synthesis protocol that achieves an improved control over the lateral size, by exploiting a series of long-chained carboxylate precursors that vary from cadmium octanoate (C) to cadmium stearate (C). The length of this metallic precursor is key to tune the width and aspect ratio of the final NPLs, and for the shorter chain lengths, the synthesis yield is improved. NPLs prepared with our procedure possess significantly enhanced photoluminescence quantum efficiencies, up to 30%. This is likely due to their reduced lateral dimensions, which also grant them good colloidal stability. As the NPL width can be tuned below the bulk exciton Bohr radius, the band edge blue-shifts, and we constructed a sizing curve relating the NPL absorption position and width. Further adjusting the synthesis protocol, we were able to obtain even thinner NPLs, emitting in the near-UV region, with a band-edge quantum efficiency of up to 11%. Results pave the way to stable and efficient light sources for applications such as blue and UV light-emitting devices and lasers.
用于制备发射蓝光的硒化镉纳米片(NPLs)的典型合成方案会产生横向尺寸较大且表面积大的颗粒,导致NPLs的光致发光量子效率较低。我们开发了一种合成方案,通过利用一系列从辛酸镉(C)到硬脂酸镉(C)的长链羧酸盐前体,实现了对横向尺寸的更好控制。这种金属前体的长度是调节最终NPLs宽度和纵横比的关键,对于较短的链长,合成产率有所提高。用我们的方法制备的NPLs具有显著提高的光致发光量子效率,高达30%。这可能是由于它们减小的横向尺寸,这也赋予了它们良好的胶体稳定性。由于NPLs的宽度可以调节到低于体激子玻尔半径,带边发生蓝移,我们构建了一条将NPLs吸收位置与宽度相关联的尺寸曲线。进一步调整合成方案,我们能够获得更薄的NPLs,在近紫外区域发射,带边量子效率高达11%。这些结果为蓝光和紫外发光器件及激光器等应用的稳定高效光源铺平了道路。