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Dive into the research topics where Yahong Yu is active.

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Featured researches published by Yahong Yu.


Physics of Plasmas | 2012

Effect of pulse profile and chirp on a laser wakefield generation

Xiaomei Zhang; Baifei Shen; Liangliang Ji; Wenpeng Wang; Jiancai Xu; Yahong Yu; Longqing Yi; Xiaofeng Wang; Nasr A. M. Hafz; Victor V. Kulagin

A laser wakefield driven by an asymmetric laser pulse with/without chirp is investigated analytically and through two-dimensional particle-in-cell simulations. For a laser pulse with an appropriate pulse length compared with the plasma wavelength, the wakefield amplitude can be enhanced by using an asymmetric un-chirped laser pulse with a fast rise time; however, the growth is small. On the other hand, the wakefield can be greatly enhanced for both positively chirped laser pulse having a fast rise time and negatively chirped laser pulse having a slow rise time. Simulations show that at the early laser-plasma interaction stage, due to the influence of the fast rise time the wakefield driven by the positively chirped laser pulse is more intense than that driven by the negatively chirped laser pulse, which is in good agreement with analytical results. At a later time, since the laser pulse with positive chirp exhibits opposite evolution to the one with negative chirp when propagating in plasma, the wakefield in the latter case grows more intensely. These effects should be useful in laser wakefield acceleration experiments operating at low plasma densities.


Physics of Plasmas | 2010

Ultrahigh energy proton generation in sequential radiation pressure and bubble regime

Xiaomei Zhang; Baifei Shen; Liangliang Ji; Fengchao Wang; Meng Wen; Wenpeng Wang; Jiancai Xu; Yahong Yu

Protons in a microtarget embedded in an underdense high-mass plasma can be accelerated sequentially by the radiation pressure of a short circularly polarized laser pulse and the induced wake bubble field in the background plasma, which has been shown in detail by two-dimensional particle in cell simulations. It has been found that instead of using transverse Gaussian pulses proton energy can be increased dramatically by using a transverse super-Gaussian laser pulse. With a 2.14x10{sup 23} W/cm{sup 2} laser pulse in a tritium plasma of density 1.5x10{sup 20}/cm{sup 3}, 76 GeV high-quality quasimonoenergetic protons have been obtained. The scaling relations between the obtainable proton energy and the laser amplitude as well as the background plasma density have been shown.


Physical Review Special Topics-accelerators and Beams | 2013

Scheme for proton-driven plasma-wakefield acceleration of positively charged particles in a hollow plasma channel

Longqing Yi; Baifei Shen; K. V. Lotov; Liangliang Ji; Xiaomei Zhang; Wenpeng Wang; Xueyan Zhao; Yahong Yu; Jiancai Xu; Xiaofeng Wang; Yin Shi; Lingang Zhang; Tongjun Xu; Zhizhan Xu

A new scheme for accelerating positively charged particles in a plasma wakefield accelerator is proposed. If the proton drive beam propagates in a hollow plasma channel, and the beam radius is of order of the channel width, the space charge force of the driver causes charge separation at the channel wall, which helps to focus the positively charged witness bunch propagating along the beam axis. In the channel, the acceleration buckets for positively charged particles are much larger than in the blowout regime of the uniform plasma, and stable acceleration over long distances is possible. In addition, phasing of the witness with respect to the wave can be tuned by changing the radius of the channel to ensure the acceleration is optimal. Two dimensional simulations suggest that, for proton drivers likely available in future, positively charged particles can be stably accelerated over 1 km with the average acceleration gradient of 1.3 GeV/m.


New Journal of Physics | 2010

Generation of a large amount of energetic electrons in complex-structure bubble

Jiancai Xu; Baifei Shen; Xiaomei Zhang; Meng Wen; Liangliang Ji; Wenpeng Wang; Yahong Yu; Kazuhisa Nakajima

By means of particle-in-cell (PIC) simulations, we found that when the focus size of a laser pulse is much larger than the plasma wavelength and when the laser power is hundreds of times larger than the critical power required for relativistic self-focusing, a large complex bubble is formed. The transversal size of the bubble depends on the laser spot size. Owing to the large bubble size, a bunch of electrons with the total charge in the range of a few tens of nano- Coulombs is trapped and accelerated in the bubble. When the plasma density is 2◊10 19 cm 3 , the charge of the energetic electron bunch with energy above 5MeV exceeds 45nC with a laser spot size of 60µm. Electrons continuously self-injected into such a complex bubble serve as an effective source of high- charge electron bunches.


Physics of Plasmas | 2010

Generation of high charged energetic electrons by using multiparallel laser pulses

Meng Wen; Baifei Shen; Xiaomei Zhang; Liangliang Ji; Wenpeng Wang; Jiancai Xu; Yahong Yu

Large amount of energetic electrons generated in laser wake fields driven by multiparallel laser pulses is investigated with three-dimensional particle-in-cell simulations. By adjusting the distance between the pulses, bubbles with different structure are formed, which results in different injection efficiency. Compared with the single-pulse case, the charge of the energetic electrons could be doubled when the distance between the two pulses is large enough. A characteristic distance between the pulses is obtained, above which the total amount of the energetic electrons increases linearly by applying more laser pulses. There is no limit for the charge increase in our scheme as long as the plasma is wide enough so that more pulses can be applied.


Physics of Plasmas | 2011

Instabilities in interaction of circularly polarized laser pulse and overdense target

Xiaomei Zhang; Baifei Shen; Liangliang Ji; Wenpeng Wang; Jiancai Xu; Yahong Yu; Xiaofeng Wang

Instabilities in the interaction of a normal intensity circularly polarized pulse and an overdense foil are investigated with two and three dimensional particle-in-cell simulations. Two typical instabilities were shown during the interaction. One is the Weibel-like instability induced by the current far above the Alfven limit, and the other is the boundary instability with ring structures spreading to the center from the boundary which is induced by the transverse boundaries of the target or the laser pulse. These instabilities are important to the proton acceleration by using moderate laser pulses at intensities accessible experimentally with existing laser systems.


Physics of Plasmas | 2011

Ultra-intense single attosecond pulse generated from circularly polarized laser interacting with overdense plasma

Liangliang Ji; Baifei Shen; Xiaomei Zhang; Meng Wen; Changquan Xia; Wenpeng Wang; Jiancai Xu; Yahong Yu; Mingyang Yu; Zhizhan Xu

Few-cycle relativistic circularly polarized (CP) laser pulse reflected from overdense plasma is investigated by analysis and particle-in-cell simulations. It is found that through the laser-induced one-time drastic oscillation of the plasma boundary, an ultra-intense single attosecond light pulse can be generated naturally. An analytical model is proposed to describe the interaction and it agrees well with simulation results. They both indicate that peak intensity of the generated attosecond pulse is higher when the plasma density is closer to the relativistic transparency threshold and/or the pulse duration is closer to plasma oscillating period. Two dimensional simulation shows that a two-cycle 1021 W/cm2 CP laser can generate a single 230 attosecond 2 × 1021 W/cm2 pulse of light at a conversion efficiency greater than 10-2.


Physics of Plasmas | 2015

High quality electron bunch generation with CO2-laser-plasma interaction

Lingang Zhang; Baifei Shen; Jiancai Xu; Liangliang Ji; Xiaomei Zhang; Wenpeng Wang; Xueyan Zhao; Longqing Yi; Yahong Yu; Yin Shi; Tongjun Xu; Zhizhan Xu

CO2 laser-driven electron acceleration in low-density plasma is demonstrated using particle-in-cell simulation. An intense CO2 laser pulse of long wavelength excites a wake bubble that has a large elongated volume for accelerating a large number of electrons before reaching the charge saturation limit. A transversely injected laser pulse is used to induce and control the electron injection. It is found that an electron bunch with total charge up to 10 nC and absolute energy spread less than 16 MeV can be obtained. As a result, the charge per energy interval of the bunch reaches up to 0.6 nC/MeV. Intense CO2-laser based electron acceleration can provide a new direction for generating highly charged electron bunches with low energy spread, which is of much current interest, especially for table-top X-ray generation.


Physics of Plasmas | 2013

Enhanced high harmonic generation and the phase effect in double-sided relativistic laser-foil interaction

Yahong Yu; Baifei Shen; Liangliang Ji; Xiaomei Zhang; Wenpeng Wang; Xueyan Zhao; Xiaofeng Wang; Longqing Yi; Yin Shi; Tongjun Xu; Lingang Zhang; Zhizhan Xu

High harmonic generation (HHG) from relativistic laser-foil interaction is investigated analytically and through particle-in-cell simulations. Previous work has shown that when two counter-propagating circularly polarized (CP) laser pulses interact with a thin foil, electrons can be well confined spatially to form a high density layer. The layer electrons oscillate in certain transversal direction and radiate intense high order harmonics. It is demonstrated here that there is a critical foil thickness, only below which can high harmonics be generated efficiently. Furthermore, to enhance the intensity in higher order region, the third linearly polarized (LP) short-wavelength laser pulse with much lower intensity is introduced. Analysis and simulations both show that the enhancement is determined by the relative phase δϕ between the driving CP laser pulses and LP pulse. The enhancement at high order is quite considerable and very sensitive to the relative phase δϕ, thus offering not only a way to efficientl...


Physics of Plasmas | 2010

Overloading effect of energetic electrons in the bubble regime of laser wakefield acceleration

Jiancai Xu; Baifei Shen; Xiaomei Zhang; Meng Wen; Liangliang Ji; Wenpeng Wang; Yahong Yu; Yuelin Li

The overloading effect of self-injected high-charge electron bunch in the bubble regime of laser wakefield acceleration is studied. When too many electrons are trapped by the bubble, the wakefield can be strongly modified, preventing further injection of the background electrons. This process is directly observed in two-dimensional particle-in-cell simulation and is explained using a one-dimensional wake model. For obtaining significantly more energetic electrons, the use of a decreasing plasma density profile is proposed.

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Xiaomei Zhang

Chinese Academy of Sciences

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Baifei Shen

Chinese Academy of Sciences

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Liangliang Ji

Chinese Academy of Sciences

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Wenpeng Wang

Chinese Academy of Sciences

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Jiancai Xu

Chinese Academy of Sciences

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Longqing Yi

Chinese Academy of Sciences

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Meng Wen

Chinese Academy of Sciences

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Xiaofeng Wang

Chinese Academy of Sciences

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Yin Shi

Chinese Academy of Sciences

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Zhizhan Xu

Chinese Academy of Sciences

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