Hole Relaxation Bottlenecks in CdSe/CdTe/CdSe Lateral Heterostructures Lead to Bicolor Emission

IF 9.6 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Nano Letters Pub Date : 2024-06-17 DOI:10.1021/acs.nanolett.4c01250
Benjamin T. Diroll*, Corentin Dabard, Muchuan Hua, Juan I. Climente, Emmanuel Lhuillier and Sandrine Ithurria, 
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Abstract

Concentric lateral CdSe/CdTe/CdSe heterostructures show bicolor photoluminescence from both a red charge transfer band of the CdSe/CdTe interface and a green fluorescence from CdSe. This work uses visible and near-infrared transient spectroscopy measurements to demonstrate that the deviation from Kasha’s rule arises from a hole relaxation bottleneck from CdSe to CdTe. Hole transfer can take up to 1 ns, which permits radiative relaxation of excitons remaining in CdSe. Simulations indicate that the hole relaxation bottleneck arises due to the sparse density of states and poor spatial overlap of hole states at energies near the CdSe band edge. The divergent kinetics of transfer for band edge and hot holes is exploited to vary the ratio of green and red photoluminescence with excitation wavelength, providing another knob to control emission color. These findings support the use of lateral heterojunctions as a method for slowing carrier relaxation in two-dimensional materials.

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CdSe/CdTe/CdSe 侧向异质结构中的孔弛豫瓶颈导致双色发射。
同心横向镉硒/镉碲/镉硒异质结构显示出来自镉硒/镉碲界面红色电荷转移带和镉硒绿色荧光的双色光致发光。这项研究利用可见光和近红外瞬态光谱测量法证明,卡沙规则的偏差源于从碲化镉到碲化镉之间的空穴弛豫瓶颈。空穴传输可长达 1 ns,这使得残留在硒化镉中的激子得以辐射弛豫。模拟结果表明,空穴弛豫瓶颈的产生是由于硒化镉带边缘附近能量处的空穴态密度稀疏、空间重叠性差。利用带边空穴和热空穴的不同转移动力学,可以随激发波长改变绿色和红色的光致发光比例,为控制发射颜色提供了另一种方法。这些发现支持使用横向异质结作为减缓二维材料中载流子弛豫的方法。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Nano Letters
Nano Letters 工程技术-材料科学:综合
CiteScore
16.80
自引率
2.80%
发文量
1182
审稿时长
1.4 months
期刊介绍: Nano Letters serves as a dynamic platform for promptly disseminating original results in fundamental, applied, and emerging research across all facets of nanoscience and nanotechnology. A pivotal criterion for inclusion within Nano Letters is the convergence of at least two different areas or disciplines, ensuring a rich interdisciplinary scope. The journal is dedicated to fostering exploration in diverse areas, including: - Experimental and theoretical findings on physical, chemical, and biological phenomena at the nanoscale - Synthesis, characterization, and processing of organic, inorganic, polymer, and hybrid nanomaterials through physical, chemical, and biological methodologies - Modeling and simulation of synthetic, assembly, and interaction processes - Realization of integrated nanostructures and nano-engineered devices exhibiting advanced performance - Applications of nanoscale materials in living and environmental systems Nano Letters is committed to advancing and showcasing groundbreaking research that intersects various domains, fostering innovation and collaboration in the ever-evolving field of nanoscience and nanotechnology.
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