Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Youwei Tian is active.

Publication


Featured researches published by Youwei Tian.


Laser and Particle Beams | 2007

Intense local plasma heating by stopping of ultrashort ultraintense laser pulse in dense plasma

Wei Yu; M. Y. Yu; Han Xu; Youwei Tian; J Chen; A. Y. Wong

Self-trapping, stopping, and absorption of an ultrashort ultraintense linearly polarized laser pulse in a finite plasma slab of near-critical density is investigated by particle-in-cell simulation. As in the underdense plasma, an electron cavity is created by the pressure of the transmitted part of the light pulse and it traps the latter. Since the background plasma is at near-critical density, no wake plasma oscillation is created. The propagating self-trapped light rapidly comes to a stop inside the slab. Subsequent ion Coulomb explosion of the stopped cavity leads to explosive expulsion of its ions and formation of an extended channel having extremely low plasma density. The energetic Coulomb-exploded ions form shock layers of high density and temperature at the channel boundary. In contrast to a propagating pulse in a lower density plasma, here the energy of the trapped light is deposited onto a stationary and highly localized region of the plasma. This highly localized energy-deposition process can be relevant to the fast ignition scheme of inertial fusion.


Physics of Plasmas | 2008

Generation of periodic ultrashort electron bunches and strongly asymmetric ion Coulomb explosion in nanometer foils interacting with ultra-intense laser pulse

Youwei Tian; Wei Yu; Peixiang Lu; Han Xu; Vinod Senecha; A. L. Lei; Baifei Shen; Xin Wang

The interaction of a linearly polarized intense laser pulse with an ultrathin nanometer plasma layer is investigated to understand the physics of the ion acceleration. It is shown by the computer simulation that the plasma response to the laser pulse comprises two steps. First, due to the v×B effect, electrons in the plasma layer are extracted and periodic ultrashort relativistic electron bunches are generated every half of a laser period. Second, strongly asymmetric Coulomb explosion of ions in the foil occurs due to the strong electrostatic charge separation, once the foil is burnt through. Followed by the laser accelerated electron bunch, the ion expansion in the forward direction occurs along the laser beam that is much stronger as compared to the backward direction.


Physics of Plasmas | 2006

Ion cascade acceleration from the interaction of a relativistic femtosecond laser pulse with a narrow thin target

Feng He; H. Xu; Youwei Tian; Wei Yu; Peixiang Lu; Ruxin Li

Particle-in-cell simulations are performed to study the acceleration of ions due to the interaction of a relativistic femtosecond laser pulse with a narrow thin target. The numerical results show that ions can be accelerated in a cascade by two electrostatic fields if the width of the target is smaller than the laser beam waist. The first field is formed in front of the target by the central part of the laser beam, which pushes the electron layer inward. The major part of the abaxial laser energy propagates along the edges to the rear side of the target and pulls out some hot electrons from the edges of the target, which form another electrostatic field at the rear side of the target. The ions from the front surface are accelerated stepwise by these two electrostatic fields to high energies at the rear side of the target. The simulations show that the largest ion energy gain for a narrow target is about four times higher than in the case of a wide target.


Physics of Plasmas | 2006

Electron dynamics and harmonics emission spectra due to electron oscillation driven by intense laser pulses

Youwei Tian; Wei Yu; Feng He; Han Xu; Vinod Senecha; Degang Deng; Yi Wang; Ruxin Li; Zhizhan Xu

The dynamics and harmonics emission spectra due to electron oscillation driven by intense laser pulses have been investigated considering a single electron model. The spectral and angular distributions of the harmonics radiation are numerically analyzed and demonstrate significantly different characteristics from those of the low-intensity field case. Higher-order harmonic radiation is possible for a sufficiently intense driving laser pulse. A complex shifting and broadening structure of the spectrum is observed and analyzed for different polarization. For a realistic pulsed photon beam, the spectrum of the radiation is redshifted for backward radiation and blueshifted for forward radiation, and spectral broadening is noticed. This is due to the changes in the longitudinal velocity of the electron during the laser pulse. These effects are much more pronounced at higher laser intensities giving rise to even higher-order harmonics that eventually leads to a continuous spectrum. Numerical simulations have further shown that broadening of the high harmonic radiation can be limited by increasing the laser pulse width. The complex shifting and broadening of the spectra can be employed to characterize the ultrashort and ultraintense laser pulses and to study the ultrafast dynamics of the electrons. (c) 2006 American Institute of Physics.


Applied Optics | 2006

Propagation properties of a hard-edged diffracted beam generated by a Gaussian mirror resonator

Degang Deng; Chaoyang Wei; Youwei Tian; Jianda Shao; Zhengxiu Fan

Based on the scalar diffraction theory, the propagation and focusing properties of a hard-edged diffracted beam generated by a Gaussian mirror resonator were investigated. Explicit expressions for the field distribution of the truncated beam that propagates through a paraxial optical ABCD system were derived in detail. Numerical examples are given to illustrate our analytical results.


Physics of Plasmas | 2006

Radiation damping effects on the ultrashort x-ray pulses generated by nonlinear Thomson backscattering

Yu Cang; Hui-Chun Wu; Jun Zheng; Han Xu; Youwei Tian; Wei Yu

Nonlinear Thomson backscattering of an intense Gaussian laser pulse by a counterpropagating energetic electron is investigated by numerically solving the electron equation of motion taking into account the radiative damping force. The backscattered radiation characteristics are different for linearly and circularly polarized lasers because of a difference in their ponderomotive forces acting on the electron. The radiative electron energy loss weakens the backscattered power, breaks the symmetry of the backscattered-pulse profile, and prolongs the duration of the backscattered radiation. With the circularly polarized laser, an adjustable double-peaked backscattered pulse can be obtained. Such a profile has potential applications as a subfemtosecond x-ray pump and probe with adjustable time delay and power ratio.


Journal of Physics: Conference Series | 2008

Effect of focus position on a high intensity laser propagation in a dense plasma

A. L. Lei; W. Yu; Youwei Tian; Han Xu; Xin Wang; Xiufeng Yang; Vinod Senecha; K. A. Tanaka; R. Kodama

A tightly focused laser pulse with relativistic intensity propagating in a dense plasma is studied by means of 2D particle-in-cell simulation. The results demonstrate that the laser propagation in the plasma is strongly dependent on the laser focus position. It is found that the laser can penetrate deeper in the plasma and create an on-axis plasma channel at certain focus positions, which is due to the suppression of the filamentation instability in the laser plasma interactions. The results are of interest for understanding of the fast ignition related experiments.


Proceedings of SPIE, the International Society for Optical Engineering | 2006

Pondermotive acceleration of electrons to GeV energies by a tightly focused ultra-short ultra-intense laser pulse

Youwei Tian; Wei Yu; Peixiang Lu; Feng He; Han Xu

Laser-driven pondermotive acceleration of electrons in vacuum has been considered using computer simulations. It is demonstrated that a low-energy free electron can be violently accelerated to final kinetic energy of GeV by a tightly focused ultra-short ultra-intense laser pulse. Suitable conditions that are crucial for this phenomenon to occur have been investigated. It is shown that selection of appropriate initial conditions like relative time delay between electron and the laser pulse, electrons incident angle and momentum, laser pulse duration and its focal spot size play important roles in the efficient acceleration scheme.


Optik | 2007

Propagation properties of beams generated by Gaussian mirror resonator in uniaxial crystals

Degang Deng; Jian Shen; Youwei Tian; Jianda Shao; Zhengxiu Fan


Optics Communications | 2006

Propagation properties of beam generated by Gaussian mirror resonator

Degang Deng; Chaoyang Wei; Kui Yi; Jianda Shao; Zhengxiu Fan; Youwei Tian

Collaboration


Dive into the Youwei Tian's collaboration.

Top Co-Authors

Avatar

Han Xu

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Wei Yu

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Degang Deng

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Peixiang Lu

Huazhong University of Science and Technology

View shared research outputs
Top Co-Authors

Avatar

Vinod Senecha

Raja Ramanna Centre for Advanced Technology

View shared research outputs
Top Co-Authors

Avatar

Jianda Shao

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

Zhengxiu Fan

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Xin Wang

Chinese Academy of Sciences

View shared research outputs
Top Co-Authors

Avatar

A. L. Lei

Chinese Academy of Sciences

View shared research outputs
Researchain Logo
Decentralizing Knowledge