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Dive into the research topics where Muhammad Ali Bake is active.

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Featured researches published by Muhammad Ali Bake.


Physical Review A | 2014

QED cascade induced by a high-energy γ photon in a strong laser field

Suo Tang; Bai-Song Xie; Hong-Yu Wang; Muhammad Ali Bake

The QED cascade induced by the two counter-propagating lasers is studied. It is demonstrated that the probability of a seed-photon to create a pair is much larger than that of a seed-electron. By analyzing the dynamic characteristics of the electron and positron created by the seed-photon, it is found that the created particles are more probable to emit photons than the seed-electron. With these result, further more, we also demonstrate that the QED cascade can be easier to be triggered by the seed-photon than by the seed-electron with the same incident energy and the same laser.


Physics of Plasmas | 2013

Energetic protons from an ultraintense laser interacting with a symmetric parabolic concave target

Muhammad Ali Bake; Bai-Song Xie; Shan-Zhang; Hong-Yu Wang

A scheme of a symmetric parabolic concave target irradiated by an ultraintense laser for efficient proton acceleration is proposed and involved problem is studied by using two-dimensional particle-in-cell (PIC) simulations. Results indicate that on one hand, the laser field is focused by the front parabolic concave surface of target and, on the other hand, more energetic hot electrons will traverse to the rear surface of target due to concave shape. The space-charge-separation field, induced by those hot electrons escaping form parabolic concave rear surface of target, can accelerate protons to relatively high energy with narrow energy spread. The dependence of the efficiency of proton acceleration on the target parameters is examined, and the optimal target parameters are obtained. Particle-in-cell simulations show that the proton peak energy and energy spread are greatly enhanced when the target parameters are chosen optimal, for example, a proton bunch with the maximum energy ∼27.5 MeV and energy sprea...


Physics of Plasmas | 2012

Energy enhancement of proton acceleration in combinational radiation pressure and bubble by optimizing plasma density

Muhammad Ali Bake; Shan-Zhang; Bai-Song Xie; Xue-Ren Hong; Hong-Yu Wang

The combinational laser radiation pressure and plasma bubble fields to accelerate protons are researched through theoretical analysis and numerical simulations. The dephasing length of the accelerated protons bunch in the front of the bubble and the density gradient effect of background plasma on the accelerating phase are analyzed in detail theoretically. The radiation damping effect on the accelerated protons energy is also considered. And it is demonstrated by two-dimensional particle-in-cell simulations that the protons bunch energy can be increased by using the background plasma with negative density gradient. However, radiation damping makes the maximal energy of the accelerated protons a little reduction.


Physics of Plasmas | 2013

Electrons trajectories around a bubble regime in intense laser plasma interaction

Ding Lu; Xue-Yan Zhao; Bai-Song Xie; Muhammad Ali Bake; Hai-Bo Sang; Hai-Cheng Wu

Some typical electrons trajectories around a bubble regime in intense laser plasma interaction are investigated theoretically. By considering a modification of the fields and ellipsoid bubble shape due to the presence of residual electrons in the bubble regime, we study in detail the electrons nonlinear dynamics with or without laser pulse. To examine the electron dynamical behaviors, a set of typical electrons, which locate initially at the front of the bubble, on the transverse edge and at the bottom of the bubble respectively, are chosen for study. It is found that the range of trapped electrons in the case with laser pulse is a little narrower than that without laser pulse. The partial phase portraits for electrons around the bubble are presented numerically and their characteristic behaviors are discussed theoretically. Implication of our results on the high quality electron beam generation is also discussed briefly.


Physics of Plasmas | 2016

Enhanced proton acceleration by intense laser interaction with an inverse cone target

Muhammad Ali Bake; Aimierding Aimidula; Fuerkaiti Xiaerding; Reyima Rashidin

The generation and control of high-quality proton bunches using focused intense laser pulse on an inverse cone target is investigated with a set of particle-in-cell simulations. The inverse cone is a high atomic number conical frustum with a thin solid top and open base, where the laser impinges onto the top surface directly, not down the open end of the cone. Results are compared with a simple planar target, where the proton angular distribution is very broad because of transverse divergence of the electromagnetic fields behind the target. For a conical target, hot electrons along the cone wall surface induce a transverse focusing sheath field. This field can effectively suppress the spatial spreading of the protons, resulting in a high-quality small-emittance, low-divergence proton beam. A slightly lower proton beam peak energy than that of a conventional planar target was also found.


Physics of Plasmas | 2013

Efficient proton acceleration and focusing by an ultraintense laser interacting with a parabolic double concave target with an extended rear

Muhammad Ali Bake; Bai-Song Xie; Aimierding Aimidula; Hong-Yu Wang

A new scheme for acceleration and focusing of protons via an improved parabolic double concave target irradiated by an ultraintense laser pulse is proposed. When an intense laser pulse illuminates a concave target, the hot electrons are concentrated on the focal region of the rear cavity and they form a strong space-charge-separation field, which accelerates the protons. For a simple concave target, the proton energy spectrum becomes very broad outside the rear cavity because of transverse divergence of the electromagnetic fields. However, particle-in-cell simulations show that, when the concave target has an extended rear, the hot electrons along the wall surface induce a transverse focusing sheath field, resulting in a clear enhancement of proton focusing, which makes the lower proton energy spread, while, leads to a little reduction of the proton bunch peak energy.


Physics of Plasmas | 2017

Transverse magnetic field effect on the transport of relativistic electrons beam in laser irradiating plasmas

Ya-Juan Hou; Chong Lv; Feng Wan; Nureli Yasen; Muhammad Ali Bake; Hai-Bo Sang; Bai-Song Xie

A transverse gauss shape magnetic field with wide width is proposed for collimating the fast relativistic electron beam in laser irradiating plasmas, which is highlighted by the two-dimensional particle-in-cell simulations, in particular, the effects of this magnetic field on the production and transport of fast electron beam. When the axial magnetic field is also present, it is found that the energy density of fast electrons can be enhanced greatly. For example, in the presence of 30 MG axial magnetic field, it is enhanced by 3–4 times when the amplitude of the applied transverse magnetic field lies within the optimal regime 200–300 MG comparable to that without the transverse magnetic field. Meanwhile, the divergence angle of the electron beam can be controlled and even decreased a little due to the better sandwich structure of the overall weakening magnetic field. The study implies that the proposed transverse magnetic field is helpful to obtain the high quality electron beam which is beneficial to the...


Journal of Alloys and Compounds | 2017

Local electronic structure analysis of Zn-doped BiFeO3 powders by X-ray absorption fine structure spectroscopy

Turghunjan Gholam; Abduleziz Ablat; Mamatrishat Mamat; Aimierding Aimidula; Muhammad Ali Bake; Lirong Zheng; Jiaou Wang; Haijie Qian; Rui Wu; Kurash Ibrahim


Solid State Communications | 2016

Electronic structure and room temperature ferromagnetism of C doped TiO2

Abduleziz Ablat; Rong Wu; Mamatrishat Mamat; Yasin Ghupur; Aimierding Aimidula; Muhammad Ali Bake; Turghunjan Gholam; Jiaou Wang; Haijie Qian; Rui Wu; Kurash Ibrahim


Physics Letters A | 2017

An experimental study of the local electronic structure of B-site gallium doped bismuth ferrite powders

Turghunjan Gholam; Abduleziz Ablat; Mamatrishat Mamat; Rong Wu; Aimierding Aimidula; Muhammad Ali Bake; Lirong Zheng; Jiaou Wang; Haijie Qian; Rui Wu; Kurash Ibrahim

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Bai-Song Xie

Beijing Normal University

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Hong-Yu Wang

Anshan Normal University

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Haijie Qian

Chinese Academy of Sciences

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Jiaou Wang

Chinese Academy of Sciences

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Kurash Ibrahim

Chinese Academy of Sciences

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Rui Wu

Chinese Academy of Sciences

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