Fei Du
Chinese Academy of Sciences
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Publication
Featured researches published by Fei Du.
Applied Physics Letters | 2012
Y. T. Li; Cuncheng Li; M. Zhou; W. M. Wang; Fei Du; Wenjun Ding; X. X. Lin; F. Q. Liu; Z. M. Sheng; Xiao-Yu Peng; L. M. Chen; Juan Ma; X. Lu; Z. H. Wang; Zuo Wei; Jie Zhang
We report a plasma-based strong THz source generated in intense laser-solid interactions at relativistic intensities > 10(18) W/cm(2). Energies up to 50 mu J/sr per THz pulse is observed when the laser pulses are incident onto a copper foil at 67.5 degrees. The temporal properties of the THz radiation are measured by a single shot, electro-optic sampling method with a chirped laser pulse. The THz radiation is attributed to the self-organized transient fast electron currents formed along the target surface. Such a source allows potential applications in THz nonlinear physics and provides a diagnostic of transient currents generated in intense laser-solid interactions
Laser and Particle Beams | 2012
X. X. Lin; Y. T. Li; B. C. Liu; F. Q. Liu; Fei Du; S. J. Wang; Li-Juan Chen; Ludi Zhang; Xuchun Liu; Xiaolin Liu; Z. H. Wang; Juan Ma; X. R. Lu; Q. L. Dong; Wei Wang; Z. M. Sheng; Zuo Wei; Jie Zhang
The effects of laser incidence angle on lateral fast electron transport at front target surface, when a plasma is preformed, irradiated by intense (>10(18) W/cm(2)) laser pulses, are studied by K-alpha imaging technique and electron spectrometer. A horizontally asymmetric K-alpha halo, resulting from directional lateral electron transport and energy deposition, is observed for a large incidence angle (70 degrees). Moreover, a group of MeV high energy electrons is emitted along target surface. It is believed that the deformed preplasma and the asymmetrical distribution of self-generated magnetic field, at large incidence angle, play an important role in the directional lateral electron transport.
Optics Express | 2014
Chun Li; Yun-Qian Cui; M. Zhou; Fei Du; Yu-Tong Li; Weimin Wang; Liming Chen; Zheng-Ming Sheng; Jinglong Ma; Xin Lu; Jie Zhang
The interaction of 100-fs laser pulses with solid targets at laser intensities 10(16)-10(18)W/cm(2) has been investigated experimentally by simultaneous measurements of terahertz (THz) and second harmonic signals. THz yield at the front side of the target, which rises from the self-organized transient electron currents along the target surface, is found scaling linearly with the laser intensity basically. Measurements of specularly reflected light spectrum show clear evidence of resonance absorption. The positive effects of resonance absorption on surface current and THz radiation generation have been confirmed by two-dimensional (2D) particle-in-cell (PIC) simulations and angular-dependent experiments, respectively.
Science in China Series F: Information Sciences | 2012
Fei Du; Chun Li; M. Zhou; Weimin Wang; LuNing Su; Yi Zheng; Xulei Ge; Yu-Tong Li; Jinglong Ma; Xiao-Long Liu; Lu Zhang; Zheng-Ming Sheng; Liming Chen; Xin Lu; Quan-Li Dong; Zhaohua Wang; Zhiyi Wei; Jie Zhang
Intense femtosecond laser-plasma interactions can produce high power terahertz radiations. In our experiment, the polished copper target was irradiated by a p-polarized laser with intensity of more than 1018 W/cm2 at an incident angle of 67.5° from the target normal. The THz energy from three different detection angles is measured. The maximum emission is found in the direction at an angle of 45° to the laser backward direction, which is more than one order of magnitude higher than in the other two directions. A simple theoretical model has been established to explain the measurements.
Plasma Science & Technology | 2012
M. Zhou; Feng Liu; Chun Li; Fei Du; Yu-Tong Li; Weimin Wang; Zheng-Ming Sheng; Liming Chen; Jinglong Ma; Xin Lu; Quan-Li Dong; Jie Zhang
A new method based on a chirped optical pulse interferogram has been proposed to measure terahertz radiation. The frequency domain phase information of the interferogram is used to extract the time-domain terahertz pulse waveform. In principle, the resolution of our method can be as high as the unchirped probe pulse duration, with the advantages of relatively simple measurement setup and signal extracting techniques.
conference on lasers and electro optics | 2013
Yu-Tong Li; Guoqian Liao; Weimin Wang; Chun Li; LuNing Su; Yi Zheng; Meng Liu; W. C. Yan; M. Zhou; Fei Du; James Dunn; James R. Hunter; Joseph Nilsen; Zheng-Ming Sheng; Jie Zhang
Recently Terahertz (THz) radiation from laser-produced plasmas has attracted much interest since plasmas can work at arbitrarily high laser intensity. This paper will discuss the generation mechanisms of plasma-based THz radiation.
Plasma Science & Technology | 2012
Feng Liu; Xiaoxuan Lin; B. C. Liu; Wenjun Ding; Fei Du; Yu-Tong Li; Jinglong Ma; Xiao-Long Liu; Zheng-Ming Sheng; Liming Chen; Xin Lu; Quan-Li Dong; Weimin Wang; Zhaohua Wang; Zhiyi Wei; Jiaer Chen; Jie Zhang
Irradiated by femtosecond laser pulses with different energies, opened cone targets behave very differently in the transmission of incident laser pulses. The targets, each with an opening angle of 71? and an opening of 5 ?m, are fabricated using standard semiconductor technology. When the incident laser energy is low and no pre-plasma is generated on the side walls of the cones, the cone target acts like an optical device to reflect the laser pulse, and 15% of the laser energy can be transmitted through the cones. In contrast, when the incident laser energy is high enough to generate pre-plasmas by the pre-pulse of the main pulse that fills the inner cone, the cone with the plasmas will block the transmission of the laser, which leads to a decrease in laser transmission compared with the low-energy case with no plasma. Simulation results using optical software in the low-energy case, and using the particle-in-cell code in the high-energy case, are primarily in agreement with the experimental results.
Physics of Plasmas | 2012
Feng Liu; Xiaoxuan Liu; B. C. Liu; Wenjun Ding; Fei Du; Yu-Tong Li; Jinglong Ma; Xiao-Long Liu; Zheng-Ming Sheng; Liming Chen; Xin Lu; Quan-Li Dong; Wei-Min Wang; Zhaohua Wang; Zhiyi Wei; Jie Zhang
Using opened reentrant cone silicon targets, we have demonstrated the effect of micro focusing of fast electrons generated in intense laser-plasma interactions. When an intense femtosecond laser pulse is focused tightly onto one of the side walls of the cone, fast electron beam emitted along the side wall is observed. When a line focus spot, which is long enough to irradiate both of the side walls of the cone simultaneously, is used, two electron beams emitted along each side wall, respectively, are observed. The two beams should cross each other near the open tip of the cone, resulting in micro focusing. We use a two-dimensional Particle-In-Cell code to simulate the electron emission both in opened and closed cone targets. The simulation results of the opened cone targets are in agreement with the experimental observation while the results of the closed cone targets do not show the micro focusing effect.
Optics Express | 2016
Chun Li; Guoqian Liao; M. Zhou; Fei Du; Jinglong Ma; Yu-Tong Li; Weimin Wang; Zheng-Ming Sheng; Liming Chen; Jie Zhang
We report a systematic study on backward terahertz (THz) radiation generation from laser-solid interactions by changing a variety of laser/plasma parameters. We demonstrate a high-energy (with an energy flux density reaching 80 μJ/sr), broadband (>10 THz) plasma-based radiation source. The radiation energy is mainly distributed either in the >10 THz or <3 THz regions. A radial surface current formed by the lateral transport of low-energy electrons (LEE) is believed to be responsible for the radiation in the high-THz region (>10 THz), while high-energy surface fast electrons (SFE) accelerated along the target surface mainly contribute to lower frequency (<3 THz) radiation. The unifying explanation could be applied to backward THz radiation generation from solid targets with presence of relative small preplasmas.
photonics global conference | 2010
Y. T. Li; Chuan-Feng Li; M. Zhou; X. X. Lin; Fukun Liu; Fei Du; S. J. Wang; Li-Juan Chen; Juan Ma; Z. H. Wang; Zuo Wei; Z. M. Sheng; Jie Zhang
We have demonstrated an intense plasma-based THz source using ∼5 TW femtosecond laser pulses to irradiate solid targets. The energy of a single THz pulse emitted in the laser specular direction increases with the laser energy. The maximum THz energy can be as high as tens μJ/sr. The polarization of the THz pulse is measured to be linear.