Showing posts with label Biao-Bing Jin. Show all posts
Showing posts with label Biao-Bing Jin. Show all posts

Thursday, June 6, 2019

Abstract-Temperature-dependent terahertz vibrational spectra of tetracycline and its degradation products


Lijuan Xie, Chen Wang, Min Chen, Biao-Bing Jin, Ruiyun Zhou, Yuxin Huang, Saima Hameed, Yibin Ying


https://www.sciencedirect.com/science/article/pii/S1386142519305694#!

Terahertz (THz) spectroscopy has emerged as an attractive technique for qualitative and quantitative detection. Analysis of these chemicals in the THz range under various temperatures can yield detailed information on molecular vibrational modes, which is of utmost importance for effective detection. Here we report the use of THz time-domain spectroscopy (THz-TDS) to measure tetracyclines hydrochloride (TCH) and its degradation products including epitetracycline hydrochloride (ETCH), anhydrotetracycline hydrochloride (ATCH), and epianhydrotetracycline hydrochloride (EATCH) over the temperature range of 4.5–300 K for the first time. The results showed that these four tetracyclines exhibited numerous distinct spectral features in frequency-dependent absorption spectra, which demonstrated the qualitative capacity of THz-TDS. Through density functional theory (DFT) calculations and analysis of temperature-dependent absorption spectra, the origin of the observed terahertz absorption peaks of these four tetracyclines were well interpreted. This study could lay the foundation for high-performance analysis of biological and chemical molecules by THz spectroscopy, which is essential for sensing application.

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.

Saturday, February 28, 2015

Abstract-Broadband tunable liquid crystal terahertz waveplates driven with porous graphene electrodes



Lei Wang1,*, Xiao-Wen Lin1,*, Wei Hu1, Guang-Hao Shao1, Peng Chen1, Lan-Ju Liang2, Biao-Bing Jin2, Pei-Heng Wu2, Hao Qian3, Yi-Nong Lu3, Xiao Liang4, Zhi-Gang
 Zheng1 and Yan-Qing Lu1

http://www.nature.com/lsa/journal/v4/n2/full/lsa201526a.html

Versatile devices, especially tunable ones, for terahertz imaging, sensing and high-speed communication, are in high demand. Liquid crystal based components are perfect candidates in the optical range; however, they encounter significant challenges in the terahertz band, particularly the lack of highly transparent electrodes and the drawbacks induced by a thick cell. Here, a strategy to overcome all these challenges is proposed: Few-layer porous graphene is employed as an electrode with a transmittance of more than 98%. A subwavelength metal wire grid is utilized as an integrated high-efficiency electrode and polarizer. The homogeneous alignment of a high-birefringence liquid crystal is implemented on both frail electrodes via a non-contact photo-alignment technique. A tunable terahertz waveplate is thus obtained. Its polarization evolution is directly demonstrated. Furthermore, quarter-wave plates that are electrically controllable over the entire testing range are achieved by stacking two cells. The proposed solution may pave a simple and bright road toward the development of various liquid crystal terahertz apparatuses.