Department of Electrical and Electronics Engineering, Department of Physics, UNAM - Institute of Materials Science and Nanotechnology, Bilkent University, Ankara 06800, Turkey.
Luminous! Center of Excellence for Semiconductor Lighting and Displays, School of Electrical and Electronic Engineering, Division of Physics and Applied Physics, School of Physical and Mathematical Sciences, School of Materials Science and Engineering, Nanyang Technological University, Singapore 639798, Singapore.
J Am Chem Soc. 2023 Jun 7;145(22):12033-12043. doi: 10.1021/jacs.3c00999. Epub 2023 May 9.
Solution-processed two-dimensional nanoplatelets (NPLs) allowing lateral growth of a shell (crown) by not affecting the pure confinement in the vertical direction provide unprecedented opportunities for designing heterostructures for light-emitting and -harvesting applications. Here, we present a pathway for designing and synthesizing colloidal type-II core/(multi-)crown hetero-NPLs and investigate their optical properties. Stoke's shifted broad photoluminescence (PL) emission and long PL lifetime (∼few 100 ns) together with our wavefunction calculations confirm the type-II electronic structure in the synthesized CdS/CdSeTe core/crown hetero-NPLs. In addition, we experimentally obtained the band-offsets between CdS, CdTe, and CdSe in these NPLs. These results helped us designing hetero-NPLs with near-unity PL quantum yield in the CdSe/CdSeTe/CdSe/CdS core/multicrown architecture. These core/multicrown hetero-NPLs have two type-II interfaces unlike traditional type-II NPLs having only one and possess a CdS ending layer for passivation and efficient suppression of stacking required for optoelectronic applications. The light-emitting diode (LED) obtained using multicrown hetero-NPLs exhibits a maximum luminance of 36,612 cd/m and external quantum efficiency of 9.3%, which outcompetes the previous best results from type-II NPL-based LEDs. These findings may enable designs of future advanced heterostructures of NPLs which are anticipated to show desirable results, especially for LED and lasing platforms.
通过不影响垂直方向上的纯限制来允许壳(冠)横向生长的溶液处理二维纳米板(NPL)为设计用于发光和收集应用的异质结构提供了前所未有的机会。在这里,我们提出了一种设计和合成胶体 II 型核/(多)冠异质 NPL 并研究其光学性质的方法。斯托克斯位移的宽光致发光(PL)发射和长 PL 寿命(约为数百纳秒)以及我们的波函数计算证实了在合成的 CdS/CdSeTe 核/冠异质 NPL 中存在 II 型电子结构。此外,我们还实验获得了这些 NPL 中 CdS、CdTe 和 CdSe 的能带偏移。这些结果帮助我们设计了具有近 100%PL 量子产率的 CdSe/CdSeTe/CdSe/CdS 核/多冠结构的异质 NPL。这些核/多冠异质 NPL 具有两个 II 型界面,而不同于传统的仅具有一个 II 型界面的 II 型 NPL,并且具有 CdS 结束层用于钝化和有效抑制堆叠,这对于光电应用是必需的。使用多冠异质 NPL 获得的发光二极管(LED)表现出 36,612 cd/m 的最大亮度和 9.3%的外量子效率,这超过了之前基于 II 型 NPL 的 LED 的最佳结果。这些发现可能使未来的 NPL 异质结构设计成为可能,这些设计预计会取得理想的结果,特别是在 LED 和激光平台方面。