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Review Article

Structurally altered size, composition, shape and interface-dependent optical properties of quantized nanomaterials

Neng QinHui HanGuijian Guan( )Ming-Yong Han( )
Institute of Molecular Plus, Tianjin University, Tianjin 300072, China
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Abstract

The impact of the size effect on the color and photoluminescence (PL) of quantum dots (QDs) has sparked a revolutionary field of research, culminating in the prestigious Nobel Prize in 2023. Prior to their widespread popularization and large-scale commercialization, it is of paramount importance to effectively manipulate and optimize their optical properties. In this review, we place specific emphasis on the striking correlation between the optical characteristics of QDs and their size, structure, composition, and interface environment. We commence by tracing the evolution of quantum dot technology and subsequently categorizing QDs while outlining their typical synthesis methods. This is followed by a deep dive into the pivotal roles of size, composition, structure, and interfacial ligands in fine-tuning, optimizing, and enhancing the optical properties of QDs. Additionally, we illustrate the luminescence enhancement and charge transfer phenomena stemming from the heterojunction between semiconductor QDs and metal nanomaterials, which contribute to improved performance. Lastly, we introduce the burgeoning field of chiral QDs and their innovative applications. Armed with this knowledge, QDs can be readily tailored to exhibit adjustable luminous characteristics across the entire spectrum, boasting high luminous efficiency through multifaceted regulation. These advancements render QDs even more enticing and promising for a wide array of applications.

Graphical Abstract

Through top-down or bottom-up strategies, a great variety of quantum dots (QDs) are facilely synthesized and are classified as semiconductor QDs, carbon QDs, perovskite QDs, and metal QDs (i.e., metal nanoclusters). These QDs exhibit structurally altered, size, composition, shape, and interface-dependent optical properties, offering the effective methods to readily achieve greatly improved performances such as wide absorption, tunable emission, high quantum yield, and long fluorescence lifetime.

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Nano Research
Pages 10543-10569

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Cite this article:
Qin N, Han H, Guan G, et al. Structurally altered size, composition, shape and interface-dependent optical properties of quantized nanomaterials. Nano Research, 2024, 17(12): 10543-10569. https://doi.org/10.1007/s12274-024-6839-3
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Received: 26 May 2024
Revised: 21 June 2024
Accepted: 24 June 2024
Published: 01 August 2024
© Tsinghua University Press 2024