先进光电器件的拓扑绝缘体材料

Z. Yue, Xiaolin Wang, M. Gu
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引用次数: 21

摘要

拓扑绝缘体是一种具有绝缘体态和拓扑保护的金属表面态的量子材料,具有自旋和动量螺旋锁定和狄拉克类带结构。在拓扑绝缘体材料中观察到量子自旋霍尔效应、量子反常霍尔效应、拓扑磁电效应、磁单极子像和马约拉纳费米子等独特而迷人的电子特性。拓扑绝缘体材料具有这些独特的性能,在自旋电子学和量子信息处理以及具有更高效率和更低能耗的磁电器件方面具有巨大的应用潜力。另一方面,拓扑绝缘体材料也表现出许多优异的光学特性,包括克尔和法拉第旋转、超高体折射率、近红外频率透明度、不寻常的电磁散射和超宽带表面等离子体共振。具体来说,在太赫兹频率的Bi2Se3微带阵列中观察到狄拉克等离子激元激发。在Bi1.5Sb0.5Te1.8Se1.2晶体的纳米狭缝和纳米锥阵列中观察到紫外和可见频率等离子体。在Bi2Se3纳米片中观察到高透明度。在体积Bi1.5Sb0.5Te1.8Se1.2晶体和Sb2Te3薄膜中观察到超高的折射率。这些优异的光学特性意味着拓扑绝缘体材料适用于各种光电子器件,包括等离子体太阳能电池、超薄全息图、等离子体透镜和菲涅耳透镜、宽带光电探测器和纳米波导。在本章中,我们重点介绍了拓扑绝缘体材料优异的电子和光学性能及其在先进光电器件中的广泛应用。
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Topological Insulator Materials for Advanced Optoelectronic Devices
Topological insulators are quantum materials that have an insulating bulk state and a topologically protected metallic surface state with spin and momentum helical locking and a Dirac-like band structure. Unique and fascinating electronic properties, such as the quantum spin Hall effect, quantum anomalous Hall effect, and topological magnetoelectric effect, as well as magnetic monopole images and Majorana fermions, have been observed in the topological insulator materials. With these unique properties, topological insulator materials have great potential applications in spintronics and quantum information processing, as well as magnetoelectric devices with higher efficiency and lower energy consumption. On the other hand, topological insulator materials also exhibit a number of excellent optical properties, including Kerr and Faraday rotation, ultrahigh bulk refractive index, near-infrared frequency transparency, unusual electromagnetic scattering, and ultra-broadband surface plasmon resonances. Specifically, Dirac plasmon excitations have been observed in Bi2Se3 micro-ribbon arrays at THz frequencies. Ultraviolet and visible frequency plasmonics have been observed in nanoslit and nanocone arrays of Bi1.5Sb0.5Te1.8Se1.2 crystals. High transparency has been observed in Bi2Se3 nanoplates. An ultrahigh refractive index has been observed in bulk Bi1.5Sb0.5Te1.8Se1.2 crystals as well as in Sb2Te3 thin films. These excellent optical properties mean that topological insulator materials are suitable for various optoelectronic devices, including plasmonic solar cells, ultrathin holograms, plasmonic and Fresnel lens, broadband photodetectors, and nanoscale waveguides. In this chapter, we focus on the excellent electronic and optical properties of topological insulator materials and their wide applications in advanced optoelectronic devices.
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