胶体量子点分子中的带电和多激子动力学。

IF 9.1 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Diego Florio, , , Adar Levi, , , Bokang Hou, , , Einav Scharf, , , Martin Hörmann, , , Eran Rabani, , , Giulio Cerullo, , , Uri Banin*, , and , Franco V. A. Camargo*, 
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引用次数: 0

摘要

量子点中的多载流子态被限制在小体积内,导致非辐射俄歇复合率的增加,这对不同的光电应用具有重要意义。最近,两个核壳量子点融合成二聚体为多激子态提供了一个新的物理景观,因为激子可以共享一个核(点内,局部)或占据不同的核(点间,分离)。本文采用瞬态吸收光谱研究了耦合量子点二聚体中的多激子动力学。我们观察到二聚体中的多激子种群比母体单体存活的时间要长得多,与单激子相比。一个解释了单体和二聚体之间统计差异的动力学模型表明,虽然点内多激子显示出与单体相似的俄歇速率,但点间态降低了俄歇速率。这些结果为合理设计具有定制多激子特性的新量子点分子铺平了道路。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Charged- and Multi-Exciton Dynamics in Colloidal Quantum Dot Molecules

Charged- and Multi-Exciton Dynamics in Colloidal Quantum Dot Molecules

Multicarrier states in quantum dots are confined to small volumes, resulting in increased nonradiative Auger recombination rates with implications for different optoelectronic applications. Recently, the fusion of two core–shell quantum dots into a dimer has provided a new physical landscape for multiexciton states, since the excitons may share a core (intradot, localized) or occupy different cores (interdot, segregated). Here we employ transient absorption spectroscopy to investigate the multiexciton dynamics in coupled quantum dot dimers. We observe that multiexciton populations in the dimers live significantly longer in comparison to the parent monomers, in contrast to the single exciton regime. A kinetic model that accounts for the statistical differences between monomers and dimers reveals that, while intradot multiexcitons show Auger rates similar to the monomers, interdot states have reduced Auger rates. These results pave the way for the rational design of new quantum dot molecules with tailored multiexciton properties.

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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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