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Plasmonics with two-dimensional semiconductors: from basic research to technological applications

机译:与二维半导体等离子上:从基础研究到技术应用

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摘要

Herein, we explore the main features and the prospect of plasmonics with two-dimensional semiconductors. Plasmonic modes in each class of van der Waals semiconductors have their own peculiarities, along with potential technological capabilities. Plasmons of transition-metal dichalcogenides share features typical of graphene, due to their honeycomb structure, but with damping processes dominated by intraband rather than interband transitions, unlike graphene. Spin-orbit coupling strongly affects the plasmonic spectrum of buckled honeycomb lattices (silicene and germanene), while the anisotropic lattice of phosphorene determines different propagation of plasmons along the armchair and zigzag directions. Black phosphorus is also a suitable material for ultrafast plasmonics, for which the active plasmonic response can be initiated by photoexcitation with femtosecond pulses. We also review existing applications of plasmonics with two-dimensional materials in the fields of thermoplasmonics, biosensing, and plasma-wave Terahertz detection. Finally, we consider the capabilities of van der Waals heterostructures for innovative low-loss plasmonic devices.
机译:在此,我们探索的主要特性和与二维等离子的前景半导体。范德瓦耳斯半导体有自己的特点,以及潜在的技术功能。典型的dichalcogenides分享功能石墨烯,由于他们的蜂窝结构,但是与阻尼过程由intraband主导而不是带间的转换,不像石墨烯。扣蜂巢的电浆频谱格(silicene和germanene),各向异性晶格phosphorene决定不同的等离子体激元的传播扶手椅和锯齿形的方向。也是一个超速的合适的材料吗等离子,活跃的电浆响应可以由光致激发飞秒脉冲。应用二维的等离子材料领域的thermoplasmonics,若,等离子体波太赫兹检测。最后,我们考虑van der的功能瓦尔斯创新的低损耗的异质结构电浆设备。

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