纳米光子学:基础、挑战、前景和应用

M. Iqbal, N. Ashraf, Wajeehah Shahid, M. Awais, A. Durrani, K. Shahzad, M. Ikram
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引用次数: 6

摘要

纳米光子学涵盖了广泛的重要物理效应,包括远远超出衍射极限的光-物质相互作用,并为光收集,传感,发光,光开关和媒体传输技术的各种应用开辟了新的途径。近年来,融合纳米技术和光子学的专业知识日益增长,已成为我们日常生活中基础实验和新技术的基础,并在许多光学系统中发挥了核心作用。它需要在难以置信的小尺度上对光子与物质的相互作用进行理论研究,称为纳米结构,以便通过理解光子与物质相互作用或以其他方式通过物质传播时的行为,制备纳米尺度的设备和附件,用于处理、开发、减速、影响和/或调节光子。这个多学科领域也对工业产生了影响,使研究人员能够在设计、应用科学、物理科学、化学、材料科学和生物医学技术方面探索新的视野。本章将涵盖纳米光子学中非线性光学现象的基础、纳米限制、量子表现、纳米尺度相互作用、数值方法和特性,以及在我们的前沿世界中预测的纳米光子学消耗。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Nanophotonics: Fundamentals, Challenges, Future Prospects and Applied Applications
Nanophotonics encompasses a wide range of nontrivial physical effects including light-matter interactions that are well beyond diffraction limits, and have opened up new avenues for a variety of applications in light harvesting, sensing, luminescence, optical switching, and media transmitting technologies. Recently, growing expertise of fusing nanotechnology and photonics has become fundamental, arising outskirts, challenging basic experimentation and opportunities for new technologies in our daily lives, and played a central role in many optical systems. It entails the theoretical study of photon’s interactions with matter at incredibly small scales, known as nanostructures, in order to prepare nanometer scale devices and accessories for processing, development, slowing down, influencing, and/or regulating photons through comprehending their behavior while interacting with or otherwise traveling via matter. This multidisciplinary field has also made an impact on industry, allowing researchers to explore new horizons in design, applied science, physical science, chemistry, materials science, and biomedical technologies. The foundations, nano-confinements, quantum manifestations, nanoscale interactions, numerical methods, and peculiarities of nonlinear optical phenomena in nano-photonics as well as projected nano-photonics consumption’s in our cutting-edge world, will be covered in this chapter.
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