Showing posts with label Qiong He. Show all posts
Showing posts with label Qiong He. Show all posts

Wednesday, August 4, 2021

Dynamic Control of THz Wavefronts by Rotating Layers of Cascaded Metasurfaces

 


A metadevice for dynamically controlling THz wavefronts by rotating layers of cascaded metasurfaces. Credit: Shanghai University

Cascaded metasurfaces for dynamic control of THz wavefronts
https://scitechdaily.com/dynamic-control-of-thz-wavefronts-by-rotating-layers-of-cascaded-metasurfaces/

Electromagnetic (EM) waves in the terahertz (THz) regime contribute to important applications in communications, security imaging, and bio- and chemical sensing. Such wide applicability has resulted in significant technological progress. However, due to weak interactions between natural materials and THz waves, conventional THz devices are typically bulky and inefficient. Although ultra-compact active THz devices do exist, current electronic and photonic approaches to dynamic control have lacked efficiency.

Recently, rapid developments in metasurfaces have opened new possibilities for the creation of high-efficiency, ultracompact THz devices for dynamic wavefront control. Ultrathin metamaterials formed by subwavelength planar microstructures (i.e., meta-atoms), metasurfaces enable tailored optical responses for control of EM wavefronts. By constructing metasurfaces that possess certain predesigned phase profiles for transmitted or reflected waves, scientists have demonstrated fascinating wave-manipulation effects, such as anomalous light deflection, polarization manipulation, photonic spin-Hall, and holograms.

Demonstration of the dynamic beam-steering metadevice: (a) Schematics of the metadevice, which consists of two layers of transmissive metasurfaces aligned by a motorized rotation stage. (b) Top view (left) and (c) bottom view (right) SEM pictures of the fabricated metadevice. (d) Schematics of the experimental setup shown to characterize the meta-device. (e) Experimental and (f) simulated far-field scattering power distributions with the metadevice illuminated by an LCP light at 0.7 THz, and evolving along Path I at different time instants. (g) Evolution of transmitted wave directions on the sphere of k direction as the metadevice moves along Path I and Path II, with solid line (star-symbols) denoting the simulated (experimental) results. Here, the blue region denotes the solid angle for beam-steering coverage. Credit: X. Cai et al., doi 10.1117/1.AP.3.3.036003

Moreover, integrating active elements with individual meta-atoms inside passive metasurfaces allows for “active” metadevices that can dynamically manipulate EM wavefronts. While active elements in deep subwavelengths are easily found in the microwave regime (e.g., PIN diodes and varactors), and successfully contribute to active metadevices for beam-steering, programmable holograms, and dynamic imaging, they are difficult to create at frequencies higher than THz. This difficulty is due to size restrictions and significant ohmic losses in electronic circuits. Although THz frequencies can control THz beams in a uniform manner, they are typically unable to dynamically manipulate the THz wavefronts. This is ultimately due to deficiencies in the local-tuning capabilities at deep-subwavelength scales in this frequency domain. Therefore, developing new approaches that bypass reliance on local tuning is a priority.

As reported in Advanced Photonics, researchers from Shanghai University and Fudan University developed a general framework and metadevices for achieving dynamic control of THz wavefronts. Instead of locally controlling the individual meta-atoms in a THz metasurface (e.g., via PIN diode, varactor, etc.), they vary the polarization of a light beam with rotating multilayer cascaded metasurfaces. They demonstrate that rotating different layers (each exhibiting a particular phase profile) in a cascaded metadevice at different speeds can dynamically change the effective Jones-matrix property of the whole device, achieving extraordinary manipulations of the wavefront and polarization characteristics of THz beams. Two metadevices are demonstrated: the first metadevice can efficiently redirect a normally incident THz beam to scan over a wide solid-angle range, while the second one can dynamically manipulate both wavefront and polarization of a THz beam.

This work proposes an attractive alternative way to achieve low-cost dynamic control of THz waves. The researchers hope that the work will inspire future applications in THz radar, as well as bio- and chemical sensing and imaging.

Reference: “Dynamically controlling terahertz wavefronts with cascaded metasurfaces” by Xiaodong Cai, Rong Tang, Haoyang Zhou, Qiushi Li, Shaojie Ma, Dongyi Wang, Tong Liu, Xiaohui Ling, Wei Tan, Qiong He, Shiyi Xiao and Lei Zhou, 26 June 2021, Advanced Photonics.
DOI: 10.1117/1.AP.3.3.036003

Friday, December 18, 2020

Abstract-Achromatic terahertz Airy beam generation with dielectric metasurfaces

 


Qingqing Cheng , Juncheng Wang, Ling Ma, Zhixiong Shen, Jing Zhang, Xiaoying Zheng ,Tao Chen, Ye Yu, Dong Yu, Qiong He, Wei Hu, Tao Li, Songlin Zhuang,  Lei Zhou


https://www.degruyter.com/view/journals/nanoph/ahead-of-print/article-10.1515-nanoph-2020-0536/article-10.1515-nanoph-2020-0536.xml?rskey=WV2s5h&result=7&tab_body=abstract

Airy beams exhibit intriguing properties such as nonspreading, self-bending, and self-healing and have attracted considerable recent interest because of their many potential applications in photonics, such as to beam focusing, light-sheet microscopy, and biomedical imaging. However, previous approaches to generate Airy beams using photonic structures have suffered from severe chromatic problems arising from strong frequency dispersion of the scatterers. Here, we design and fabricate a metasurface composed of silicon posts for the frequency range 0.4–0.8 THz in transmission mode, and we experimentally demonstrate achromatic Airy beams exhibiting autofocusing properties. We further show numerically that a generated achromatic Airy-beam-based metalens exhibits self-healing properties that are immune to scattering by particles and that it also possesses a larger depth of focus than a traditional metalens. Our results pave the way to the realization of flat photonic devices for applications to noninvasive biomedical imaging and light-sheet microscopy, and we provide a numerical demonstration of a device protocol.

Wednesday, February 6, 2019

Abstract-Efficient manipulations of circularly polarized terahertz waves with transmissive metasurfaces



Min Jia, Zhuo Wang, Heting Li, Xinke Wang, Weijie Luo, Shulin Sun, Yan Zhang, Qiong He, Lei Zhou,
Fig. 1: Working principle of the high-efficiency photonic spin Hall effect (PSHE) and background-free Bessel beam (BB) generation for circularly polarized (CP) waves in a transmission geometry.


https://www.nature.com/articles/s41377-019-0127-0

The unrestricted control of circularly polarized (CP) terahertz (THz) waves is important in science and applications, but conventional THz devices suffer from issues of bulky size and low efficiency. Although Pancharatnam–Berry (PB) metasurfaces have shown strong capabilities to control CP waves, transmission-mode PB devices realized in the THz regime are less efficient, limiting their applications in practice. Here, based on Jones matrix analysis, we design a tri-layer structure (thickness of ~λ/5) and experimentally demonstrate that the structure can serve as a highly efficient transmissive meta-atom (relative efficiency of ~90%) to build PB metadevices for manipulating CP THz waves. Two ultrathin THz metadevices are fabricated and experimentally characterized with a z-scan THz imaging system. The first device can realize a photonic spin Hall effect with an experimentally demonstrated relative efficiency of ~90%, whereas the second device can generate a high-quality background-free CP Bessel beam with measured longitudinal and transverse field patterns that exhibit the nondiffracting characteristics of a Bessel beam. All the experimental results are in excellent agreement with full-wave simulations. Our results pave the way to freely manipulate CP THz beams, laying a solid basis for future applications such as biomolecular control and THz signal transportation.

Monday, May 14, 2018

Abstract-Angular dispersions in terahertz metasurfaces: Physics and applications


Meng Qiu, Min Jia, Shaojie Ma, Shulin Sun, Qiong He,  Lei Zhou,

https://journals.aps.org/prapplied/accepted/20070AedD5e1680fa1d60312978c2b8f3fcbaf4b7

Angular dispersion --- the response of a metasurface strongly depends on the impinging angle --- is an intrinsic property of metasurfaces, but its physical origin remains obscure which also hinders its applications in metasurface design. Here, we establish a theory to quantitatively describe such intriguing effects in metasurfaces, and verify it by both experiments and numerical simulations on a typical terahertz metasurface. The physical understanding gained motivates us to propose a new strategy to design meta-devices exhibiting impinging-angle-dependent multi-functionalities. As an illustration, we design a polarization-control meta-device that can behave as a half or quarter wave plate under different excitation angles. Our results not only reveal the physical origin of the angular dispersion, but also point out a new degree of freedom to manipulate light, which are important for designing meta-devices facing versatile application requests.

Friday, May 4, 2018

Abstract-Hybridization-induced broadband terahertz wave absorption with graphene metasurfaces



Nanli Mou, Shulin Sun, Hongxing Dong, Shaohua Dong, Qiong He, Lei Zhou, Long Zhang,

https://www.osapublishing.org/oe/abstract.cfm?uri=oe-26-9-11728


Electromagnetic (EM) wave absorption plays a vital role in photonics. While metasurfaces are proposed to absorb EM waves efficiently, most of them exhibit limited bandwidth and fixed functionalities. Here, we propose a broadband and tunable terahertz (THz) absorber based on a graphene-based metasurface, which is constructed by a single layer of closely patterned graphene concentric double rings and a metallic mirror separated by an ultrathin SiO2 layer. Plasmonic hybridization between two graphene rings significantly enlarges the absorption bandwidth, which can be further tuned by gating the graphene. Moreover, the specific design also makes our device insensitive to the incident angle and polarization state of impinging EM waves. Our results may inspire certain wave-modulation-related applications, such as THz imaging, smart absorber, tunable sensor, etc.
© 2018 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

Sunday, April 2, 2017

Abstract-Ultra-wide band reflective metamaterial wave plates for terahertz waves



, , , , ,  and 
Published 31 March 2017 • Copyright © EPLA, 2017 
Terahertz (THz) electromagnetic waves have important applications in science and technology but available functional devices suffer from the issues of bulky size, low efficiency and narrow bandwidth. Here, based on Jones matrix and Poincaré sphere analyses, we present a set of general criterions to help design high-efficiency ultra-wide band THz wave plates using ultra-thin reflective metamaterials. Two half-wavelength and one quarter-wavelength THz wave plates are designed and fabricated based on the general criterions, and their excellent polarization manipulation capabilities are demonstrated experimentally. In particular, the realized devices, with thicknesses ~ λ/7, exhibit polarization-conversion efficiencies higher than 80% in ultra-wide working bandwidths (relative bandwidth >80% at about ~ 0.7 THz).

Wednesday, October 21, 2015

Abstract-Metasurfaces: Terahertz Broadband Low-Reflection Metasurface by Controlling Phase Distributions

                             


  1. Di Sha Dong1, 
  2. Jing Yang2, 
  3. Qiang Cheng1,*, 
  4. Jie Zhao1, 
  5. Li Hua Gao1, 
  6. Shao Jie Ma3, 
  7. Shuo Liu1, 
  8. Hai Bin Chen1, 
  9. Qiong He3,
  10. Wei Wei Liu2, 
  11. Zheyu Fang4, 
  12. Lei Zhou3and
  13. Tie Jun Cui1,*
Article first published online: 20 OCT 2015
DOI: 10.1002/adom.201570065
http://onlinelibrary.wiley.com/doi/10.1002/adom.201570065/abstract

A single-layered metasurface is proposed by Q. Cheng, T. J. Cui, and co-workers to realize broadband diffusion at terahertz frequencies based on the destructive interference from a number of sub-wavelength elements. On page 1405, two kinds of elements are used to achieve full phase range and a linear phase response. The scattered waves can be efficiently manipulated to disperse into nearly all directions, resulting in extremely low back-scattering. The metasurface shows excellent angular independence toward incident waves across a broad spectrum.

Sunday, September 13, 2015

Abstract-Broadband diffusion of terahertz waves by multi-bit coding metasurfaces



Li-Hua Gao1, Qiang Cheng1,2, Jing Yang3, Shao-Jie Ma4, Jie Zhao1, Shuo Liu1, Hai-Bing Chen1, Qiong He4, Wei-Xiang Jiang1,2, Hui-Feng Ma1,2, Qi-Ye Wen2,5, Lan-Ju Liang6,7, Biao-Bing Jin2,6, Wei-Wei Liu2,3, Lei Zhou4, Jian-Quan Yao7, Pei-Heng Wu6 and Tie-Jun Cui1,2
  1. 1State Key Laboratory of Millimeter Waves, Department of Radio Engineering, Southeast University, Nanjing 210096, China
  2. 2Cooperative Innovation Centre of Terahertz Science, No. 4, Section 2, North Jianshe Road, Chengdu 610054, China
  3. 3Institute of Modern Optics, Key Laboratory of Optical Information Science and Technology (Ministry of Education), Nankai University, Tianjin 300071, China
  4. 4State Key Laboratory of Surface Physics, Key Laboratory of Micro and Nano Photonic Structures (Ministry of Education), Department of Physics, Fudan University, Shanghai 200433, China
  5. 5State Key Laboratory of Electronic Films and Integrated Devices, University of Electronic Science and Technology, Chengdu 610054, China
  6. 6Research Institute of Superconductor Electronics (RISE), School of Electronic Science and Engineering, Nanjing University, Nanjing 210093, China
  7. 7Institute of Lasers and Optoelectronics, College of Precision Instrument and Opto-Electronics Engineering, Tianjin University, Tianjin 300072, China
Correspondence: Q Cheng, Email: qiangcheng@seu.edu.cn; TJ Cui, Email: tjcui@seu.edu.cn
Received 16 January 2015; Revised 23 April 2015; Accepted 26 April 2015
http://www.nature.com/lsa/journal/v4/n9/full/lsa201597a.html

The terahertz region is a special region of the electromagnetic spectrum that incorporates the advantages of both microwaves and infrared light waves. In the past decade, metamaterials with effective medium parameters or gradient phases have been studied to control terahertz waves and realize functional devices. Here, we present a new approach to manipulate terahertz waves by using coding metasurfaces that are composed of digital coding elements. We propose a general coding unit based on a Minkowski closed-loop particle that is capable of generating 1-bit coding (with two phase states of 0 and 180°), 2-bit coding (with four phase states of 0, 90°, 180°, and 270°), and multi-bit coding elements in the terahertz frequencies by using different geometric scales. We show that multi-bit coding metasurfaces have strong abilities to control terahertz waves by designing-specific coding sequences. As an application, we demonstrate a new scattering strategy of terahertz waves—broadband and wide-angle diffusion—using a 2-bit coding metasurface with a special coding design and verify it by both numerical simulations and experiments. The presented method opens a new route to reducing the scattering of terahertz waves.

Sunday, June 7, 2015

Abstract-Terahertz Broadband Low-Reflection Metasurface by Controlling Phase Distributions




  1. Di Sha Dong1, 
  2. Jing Yang2, 
  3. Qiang Cheng1,*, 
  4. Jie Zhao1, 
  5. Li Hua Gao1, 
  6. Shao Jie Ma3, 
  7. Shuo Liu1, 
  8. Hai Bin Chen1, 
  9. Qiong He3,
  10. Wei Wei Liu2, 
  11. Zheyu Fang4, 
  12. Lei Zhou3and
  13. Tie Jun Cui1,*
    1. Article first published online: 5 JUN 2015
DOI: 10.1002/adom.201500156
Recently, reflectionless or low-reflection surfaces made of subwavelength structures have been of broad interest in practical engineering. Here, a single-layer terahertz metasurface is proposed to produce ultralow reflections across a broad-frequency spectrum and wide incidence angles by controlling the reflection phases of subwavelength structures. To enable full control of the phase range in a continuous band, a combination of two different subwavelength elements are employed, both of which exhibit weak interactions with the incident terahertz waves, thereby showing high local reflectivities near the operating frequency. An optimization method is utilized to determine the array pattern with the minimum overall reflections under the illumination of plane waves. Both numerical simulations and experimental results demonstrate ultralow reflections of terahertz waves by the metasurface over a broad frequency band and wide incidence angles. By using the proposed metasurface, the far-field scattering patterns of metallic objects can be efficiently controlled, which opens up a new route for low-reflection surface designs in the terahertz spectrum.

Thursday, May 14, 2015

Abstract-Full-range Gate-controlled Terahertz Phase Modulation with Graphene Metasurfaces


Ziqi Miao, Qiong Wu, Xin Li, Qiong He, Kun Ding, Zhenghua An, Yuanbo Zhang, and Lei Zhou
https://www.osapublishing.org/abstract.cfm?uri=CLEO_AT-2015-AF2E.6

Combining metasurfaces with gate controlled graphene, we experimentally demonstrate ±180° phase modulation can be realized at certain frequencies in THz domain, and describe a practical scheme to achieve full-range active phase modulation with such graphene metasurfaces.
© 2015 OSA
PDF Article

Tuesday, March 3, 2015

Abstract-Metamaterial-based design for a half-wavelength plate in the terahertz range



In this work, a new design aimed to perform as a half-wavelength plate in the terahertz regime is presented. The fabricated samples exhibit a phase difference of 180° at 0.73 THz between the two principal polarisations that matches with the modelling results. The experimentally determined transmittances of the two polarisations were around 61 %, which is below theoretical predictions of reaching more than 90 %. The difference between the two results is explained, and possibilities for increasing the transmittance are presented.