碲镉汞量子点中的慢热激子冷却和增强的粒子间激子耦合

IF 15.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY ACS Nano Pub Date : 2024-06-27 DOI:10.1021/acsnano.4c05061
Kezhou Fan, Kseniia A. Sergeeva, Aleksandr A. Sergeev, Lu Zhang, Christopher C. S. Chan, Zhuo Li, Xiaoyan Zhong, Stephen V. Kershaw, Junwei Liu, Andrey L. Rogach* and Kam Sing Wong*, 
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引用次数: 0

摘要

快速的热载流子/外加子冷却是光伏效率的主要损失渠道。如何减缓热载流子/外加子弛豫仍然是实现高性能光伏设备的关键。在这里,我们展示了在胶体碲化镉量子点(QDs)中可以延长到数百皮秒的慢热激子冷却。在声子瓶颈和带间双激子奥杰尔重组(BAR)效应的介导下,能量损失率比块状无机半导体小 1 个数量级。这两种效应与多激子生成的出现相互竞争。有趣的是,即使在低激发通量下,随着粒子间距的减小,BAR 也会占主导地位。实验证据和数值证据都表明,如此高效的 BAR 源自薄膜中相邻 HgTe QD 之间波函数重叠所诱导的隧道介导的粒子间激子耦合。因此,我们的研究揭示了基于 HgTe QDs 实现高效热载流子/激子太阳能电池的潜力。从根本上说,我们揭示了量子约束波函数的非局域性强化了 BAR。粒子间的激子耦合可能会为下一代光电子材料的开发带来启示,这种材料既能保持胶体半导体 QDs 尺寸可调的约束性,又能维持块体半导体材料典型的高迁移率和高电导率。
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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Slow Hot-Exciton Cooling and Enhanced Interparticle Excitonic Coupling in HgTe Quantum Dots

Rapid hot-carrier/exciton cooling constitutes a major loss channel for photovoltaic efficiency. How to decelerate the hot-carrier/exciton relaxation remains a crux for achieving high-performance photovoltaic devices. Here, we demonstrate slow hot-exciton cooling that can be extended to hundreds of picoseconds in colloidal HgTe quantum dots (QDs). The energy loss rate is 1 order of magnitude smaller than bulk inorganic semiconductors, mediated by phonon bottleneck and interband biexciton Auger recombination (BAR) effects, which are both augmented at reduced QD sizes. The two effects are competitive with the emergence of multiple exciton generation. Intriguingly, BAR dominates even under low excitation fluences with a decrease in interparticle distance. Both experimental evidence and numerical evidence reveal that such efficient BAR derives from the tunneling-mediated interparticle excitonic coupling induced by wave function overlap between neighboring HgTe QDs in films. Thus, our study unveils the potential for realizing efficient hot-carrier/exciton solar cells based on HgTe QDs. Fundamentally, we reveal that the delocalized nature of quantum-confined wave function intensifies BAR. The interparticle excitonic coupling may cast light on the development of next-generation photoelectronic materials, which can retain the size-tunable confinement of colloidal semiconductor QDs while simultaneously maintaining high mobilities and conductivities typical for bulk semiconductor materials.

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来源期刊
ACS Nano
ACS Nano 工程技术-材料科学:综合
CiteScore
26.00
自引率
4.10%
发文量
1627
审稿时长
1.7 months
期刊介绍: ACS Nano, published monthly, serves as an international forum for comprehensive articles on nanoscience and nanotechnology research at the intersections of chemistry, biology, materials science, physics, and engineering. The journal fosters communication among scientists in these communities, facilitating collaboration, new research opportunities, and advancements through discoveries. ACS Nano covers synthesis, assembly, characterization, theory, and simulation of nanostructures, nanobiotechnology, nanofabrication, methods and tools for nanoscience and nanotechnology, and self- and directed-assembly. Alongside original research articles, it offers thorough reviews, perspectives on cutting-edge research, and discussions envisioning the future of nanoscience and nanotechnology.
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