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Bridging the terahertz near-field and far-field observations of liquid crystal based metamaterial absorbers 被引量:1

Bridging the terahertz near-field and far-field observations of liquid crystal based metamaterial absorbers
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摘要 Metamaterial-based absorbers play a significant role in applications ranging from energy harvesting and thermal emitters to sensors and imaging devices.The middle dielectric layer of conventional metamaterial absorbers has always been solid.Researchers could not detect the near field distribution in this layer or utilize it effectively.Here,we use anisotropic liquid crystal as the dielectric layer to realize electrically fast tunable terahertz metamaterial absorbers.We demonstrate strong,position-dependent terahertz near-field enhancement with sub-wavelength resolution inside the metamaterial absorber.We measure the terahertz far-field absorption as the driving voltage increases.By combining experimental results with liquid crystal simulations,we verify the near-field distribution in the middle layer indirectly and bridge the nearfield and far-field observations.Our work opens new opportunities for creating high-performance,fast,tunable,terahertz metamaterial devices that can be applied in biological imaging and sensing. Metamaterial-based absorbers play a significant role in applications ranging from energy harvesting and thermal emitters to sensors and imaging devices.The middle dielectric layer of conventional metamaterial absorbers has always been solid.Researchers could not detect the near field distribution in this layer or utilize it effectively.Here,we use anisotropic liquid crystal as the dielectric layer to realize electrically fast tunable terahertz metamaterial absorbers.We demonstrate strong,position-dependent terahertz near-field enhancement with sub-wavelength resolution inside the metamaterial absorber.We measure the terahertz far-field absorption as the driving voltage increases.By combining experimental results with liquid crystal simulations,we verify the near-field distribution in the middle layer indirectly and bridge the nearfield and far-field observations.Our work opens new opportunities for creating high-performance,fast,tunable,terahertz metamaterial devices that can be applied in biological imaging and sensing.
出处 《Chinese Physics B》 SCIE EI CAS CSCD 2016年第9期122-126,共5页 中国物理B(英文版)
基金 Project supported by the National Basic Research Program of China(Grant No.2012CB921803) the National Natural Science Foundation of China(Grants Nos.61225026,61490714,11304151,and 61435008) the Natural Science Foundation of Jiangsu Province,China(Grant Nos.BK20150845 and15KJB140004) the Open Foundation Project of National Laboratory of Solid State Microstructures,China(Grant No.M28003) the Research Center of Optical Communications Engineering&Technology,Jiangsu Province,China
关键词 liquid crystal terahertz metamaterial absorber near-field and far-field properties liquid crystal terahertz metamaterial absorber near-field and far-field properties
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