Intrinsically Slow Cooling of Hot Electrons in CdSe Nanocrystals Compared to CdS

IF 9.1 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Nano Letters Pub Date : 2024-12-18 DOI:10.1021/acs.nanolett.4c04912
Matthew J. Coley-O’Rourke, Bokang Hou, Skylar J. Sherman, Gordana Dukovic, Eran Rabani
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Abstract

The utilization of excited charge carriers in semiconductor nanocrystals (NCs) for optoelectronic technologies has been a long-standing goal in the field of nanoscience. Experimental efforts to extend the lifetime of excited carriers have therefore been a principal focus. To understand the limits of these lifetimes, in this work, we theoretically study the time scales of pure electron relaxation in negatively charged NCs composed of two prototypical materials: CdSe and CdS. We find that hot electrons in CdSe have lifetimes that are 5 to 6 orders of magnitude longer than in CdS when the relaxation is governed only by the intrinsic properties of the materials. Although these two materials are known to have somewhat different electronic structure, we elucidate how this enormous difference in lifetimes arises from relatively small quantitative differences in electronic energy gaps and phonon frequencies, as well as the crucial role of Fröhlich-type electron–phonon couplings.

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与 CdS 相比,CdSe 纳米晶体中热电子的本征冷却速度较慢
利用半导体纳米晶体中的激发态载流子用于光电技术一直是纳米科学领域的一个长期目标。因此,延长受激载流子寿命的实验努力一直是一个主要的焦点。为了理解这些寿命的极限,在这项工作中,我们从理论上研究了由两种原型材料:CdSe和CdS组成的带负电荷的NCs中纯电子弛豫的时间尺度。我们发现,当弛豫仅由材料的固有性质控制时,CdSe中的热电子的寿命比cd中的热电子长5到6个数量级。虽然已知这两种材料具有不同的电子结构,但我们阐明了这种巨大的寿命差异是如何从电子能隙和声子频率的相对较小的定量差异中产生的,以及Fröhlich-type电子-声子耦合的关键作用。
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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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