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纳米光子材料与器件:最新进展及新兴应用

Nanophotonic Materials and Devices: Recent Advances and Emerging Applications.

作者信息

Chou Chau Yuan-Fong

机构信息

Centre for Advanced Material and Energy Sciences, Universiti Brunei Darussalam, Tungku Link, Gadong BE1410, Brunei.

出版信息

Micromachines (Basel). 2025 Aug 13;16(8):933. doi: 10.3390/mi16080933.

Abstract

Nanophotonics, the study of light-matter interactions at the nanometer scale, has emerged as a transformative field that bridges photonics and nanotechnology. Using engineered nanomaterials-including plasmonic metals, high-index dielectrics, two-dimensional (2D) materials, and hybrid systems-nanophotonics enables light manipulation beyond the diffraction limit, unlocking novel applications in sensing, imaging, and quantum technologies. This review provides a comprehensive overview of recent advances (post-2020) in nanophotonic materials, fabrication methods, and their cutting-edge applications. We first discuss the fundamental principles governing nanophotonic phenomena, such as localized surface plasmon resonances (LSPRs), Mie resonances, and exciton-polariton coupling, highlighting their roles in enhancing light-matter interactions. Next, we examine state-of-the-art fabrication techniques, including top-down (e.g., electron beam lithography and nanoimprinting) and bottom-up (e.g., chemical vapor deposition and colloidal synthesis) approaches, as well as hybrid strategies that combine scalability with nanoscale precision. We then explore emerging applications across diverse domains: quantum photonics (single-photon sources, entangled light generation), biosensing (ultrasensitive detection of viruses and biomarkers), nonlinear optics (high-harmonic generation and wave mixing), and integrated photonic circuits. Special attention is given to active and tunable nanophotonic systems, such as reconfigurable metasurfaces and hybrid graphene-dielectric devices. Despite rapid progress, challenges remain, including optical losses, thermal management, and scalable integration. We conclude by outlining future directions, such as machine learning-assisted design, programmable photonics, and quantum-enhanced sensing, and offering insights into the next generation of nanophotonic technologies. This review serves as a timely resource for researchers in photonics, materials science, and nanotechnology.

摘要

纳米光子学是对纳米尺度下光与物质相互作用的研究,已成为一个具有变革性的领域,它架起了光子学和纳米技术之间的桥梁。利用工程纳米材料,包括等离子体金属、高折射率电介质、二维材料和混合系统,纳米光子学能够实现超越衍射极限的光操控,从而在传感、成像和量子技术等领域开启了新的应用。本综述全面概述了纳米光子材料、制造方法及其前沿应用在2020年之后的最新进展。我们首先讨论了支配纳米光子现象的基本原理,如局域表面等离子体共振(LSPR)、米氏共振和激子-极化激元耦合,强调了它们在增强光与物质相互作用中的作用。接下来,我们研究了最先进的制造技术,包括自上而下的方法(如电子束光刻和纳米压印)和自下而上的方法(如化学气相沉积和胶体合成),以及将可扩展性与纳米级精度相结合的混合策略。然后,我们探索了不同领域的新兴应用:量子光子学(单光子源、纠缠光产生)、生物传感(病毒和生物标志物的超灵敏检测)、非线性光学(高次谐波产生和波混频)以及集成光子电路。特别关注有源和可调谐纳米光子系统,如可重构超表面和混合石墨烯-电介质器件。尽管取得了快速进展,但挑战仍然存在,包括光学损耗、热管理和可扩展集成。我们通过概述未来方向,如机器学习辅助设计、可编程光子学和量子增强传感,并对下一代纳米光子技术提供见解来结束本文。本综述为光子学、材料科学和纳米技术领域的研究人员提供了及时的参考资源。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/11d0/12388396/6accf49557ce/micromachines-16-00933-g001.jpg

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