非线性光学,有源等离子体和液晶超材料

IF 7.4 1区 物理与天体物理 Q1 ENGINEERING, ELECTRICAL & ELECTRONIC Progress in Quantum Electronics Pub Date : 2014-03-01 DOI:10.1016/j.pquantelec.2014.03.001
Iam Choon Khoo
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引用次数: 110

摘要

向列型液晶具有大而通用的光学非线性,适合光子学应用,跨越飞秒到毫秒的时间尺度,并跨越宽的光谱窗口。我们对这些多时间尺度非线性的物理性质和机制进行了全面的回顾,深入研究了单个分子的电子响应以及集体有序相动力学过程。讨论了超快全光传输开关、可调谐超材料和等离子体光子结构的几个典型理论形式和可行性论证,其中液晶成分在实现这些过程中起着关键作用。重点放在全光过程上,但我们也强调了电光手段可以提供额外控制、灵活性和增强可能性的情况。我们还指出手性向列相的另一相,即蓝相液晶如何绕过向列相的一些限制并呈现新的可能性。
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Nonlinear optics, active plasmonics and metamaterials with liquid crystals

Nematic liquid crystals possess large and versatile optical nonlinearities suitable for photonics applications spanning the femtoseconds to milliseconds time scales, and across a wide spectral window. We present a comprehensive review of the physical properties and mechanisms that underlie these multiple time scales nonlinearities, delving into individual molecular electronic responses as well as collective ordered-phase dynamical processes. Several exemplary theoretical formalisms and feasibility demonstrations of ultrafast all-optical transmission switching and tunable metamaterials and plasmonic photonic structures where the liquid crystal constituents play the critical role of enabling the processes are discussed. Emphasis is placed on all-optical processes, but we have also highlighted cases where electro-optical means could provide additional control, flexibility and enhancement possibility. We also point out how another phase of chiral nematic, namely, Blue-Phase liquid crystals could circumvent some of the limitations of nematic and present new possibilities.

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来源期刊
Progress in Quantum Electronics
Progress in Quantum Electronics 工程技术-工程:电子与电气
CiteScore
18.50
自引率
0.00%
发文量
23
审稿时长
150 days
期刊介绍: Progress in Quantum Electronics, established in 1969, is an esteemed international review journal dedicated to sharing cutting-edge topics in quantum electronics and its applications. The journal disseminates papers covering theoretical and experimental aspects of contemporary research, including advances in physics, technology, and engineering relevant to quantum electronics. It also encourages interdisciplinary research, welcoming papers that contribute new knowledge in areas such as bio and nano-related work.
期刊最新文献
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