A repository & source of cutting edge news about emerging terahertz technology, it's commercialization & innovations in THz devices, quality & process control, medical diagnostics, security, astronomy, communications, applications in graphene, metamaterials, CMOS, compressive sensing, 3d printing, and the Internet of Nanothings. NOTHING POSTED IS INVESTMENT ADVICE! REPOSTED COPYRIGHT IS FOR EDUCATIONAL USE.
Showing posts with label Y. Zheng. Show all posts
Showing posts with label Y. Zheng. Show all posts
Monday, March 14, 2016
Abstract-[Experimental Study of PMI Foam Composite Properties in Terahertz]
Xing LY, Cui HL, Shi CC, Han XH, Zhang ZY, Li W, Ma YT, Zheng Y, Zhang SN
http://www.ncbi.nlm.nih.gov/pubmed/26964202
Polymethacrylimide (PMI) foam composite has many excellent properties. Currently, PMI is heat-resistant foam, with the highest strength and stiffness. It is suitable as a high-performance sandwich structure core material. It can replace the honeycomb structure. It is widely used in aerospace, aviation, military, marine, automotive and high-speed trains, etc. But as new sandwich materials, PMI performance testing in the THz band is not yet visible. Based on the Terahertz (THz) time-domain spectroscopy technique, we conducted the transmission and reflection experiments, got the time domain waveforms and power density spectrum. And then we analyzed and compared the signals. The MATALB and Origin 8. 0 was used to calculate and obtain the transmittance (transfer function), absorptivity Coefficient, reflectance and the refractive index of the different thickness Degussa PMI (Model: Rohacell WF71), which were based on the application of the time-domain and frequency-domain analysis methods. We used the data to compared with the THz refractive index and absorption spectra of a domestic PMI, Baoding Meiwo Technology Development Co. , Ltd. (Model: SP1D80-P-30). The result shows that the impact of humidity on the measurement results is obvious. The refractive index of PMI is about 1. 05. The attenuation of power spectrum is due to the signal of the test platform is weak, the sample is thick and the internal scattering of PMI foam microstructure. This conclusion provides a theoretical basis for the THz band applications in the composite PMI. It also made a good groundwork for THz NDT (Non-Destructive Testing, NDT) technology in terms of PMI foam composites.
Tuesday, February 23, 2016
Abstract-Electron-Beam-Driven Enhanced Terahertz Coherent Smith-Purcell Radiation Within a Cylindrical Quasi-Optical Cavity
Zhou, Y. ; ; Zhang, Y. ; Liu, S.,
Terahertz Science and Technology Research Center, University of Electronic Science and Technology of China, Chengdu, China
http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=7404045&filter%3DAND%28p_IS_Number%3A5741778%29
In this paper, an electron-beam-driven enhanced terahertz (THz) coherent Smith-Purcell radiation (SPR) from the interaction between cylindrical surface wave and annular electron beam within a cylindrical quasi-optical cavity is presented. The results show that the quasi-optical cavity plays a very important role in the coherent SPR resonance and energy feedback which leads to an enhanced coherent SPR with relatively high efficiency and low current density. Moreover, it is found that the radiated field intensity and field energy of the coherent SPR with the quasi-optical cavity has been improved five times and almost one order of magnitude, respectively, compared with those without the cavity. This system provides an alternative way for high-performance THz sources.
Tuesday, June 23, 2015
Abstract-Bursts of Terahertz Radiation from Large-Scale Plasmas Irradiated by Relativistic Picosecond Laser Pulses
G. Q. Liao (廖国前), Y. T. Li (李玉同), C. Li (李春), L. N. Su (苏鲁宁), Y. Zheng (郑轶), M. Liu (刘梦), W. M. Wang (王伟民), Z. D. Hu (胡志丹), W. C. Yan (闫文超), J. Dunn, J. Nilsen, J. Hunter, Y. Liu (刘越), X. Wang (王瑄), L. M. Chen (陈黎明), J. L. Ma (马景龙), X. Lu (鲁欣), Z. Jin (金展), R. Kodama (兒玉了祐), Z. M. Sheng (盛政明), and J. Zhang (张杰)
Phys. Rev. Lett. 114, 255001 – Published 23 June 2015
http://journals.aps.org/prl/abstract/10.1103/PhysRevLett.114.255001
Powerful terahertz (THz) radiation is observed from large-scale underdense preplasmas in front of a solid target irradiated obliquely with picosecond relativistic intense laser pulses. The radiation covers an extremely broad spectrum with about 70% of its energy located in the high frequency regime over 10 THz. The pulse energy of the radiation is found to be above 100 μJ per steradian in the laser specular direction at an optimal preplasma scale length around 40–50 μm . Particle-in-cell simulations indicate that the radiation is mainly produced by linear mode conversion from electron plasma waves, which are excited successively via stimulated Raman scattering instability and self-modulated laser wakefields during the laser propagation in the preplasma. This radiation can be used not only as a powerful source for applications, but also as a unique diagnostic of parametric instabilities of laser propagation in plasmas.
Labels:
C. Li,
G. Q. Liao,
J. Dunn,
J. Hunter,
J. L. Ma,
J. Nilsen,
J.Zhang,
L. M. Chen,
L. N. Su,
M. Liu,
R. Kodama,
W. C. Yan,
W. M. Wang,
X. Lu,
X. Wang,
Y. Liu,
Y. Zheng,
Z. D. Hu,
Z. Jin,
Z. M. Sheng
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