Dr. Jyoti Rajput

Associate Professor
Department of Physics, Lovely Professional University, Phagwara, Punjab, India


Highest Degree
Ph.D. in Laser-Vaccum and Plasma Interaction from Dr. B. R. Ambedkar National Institute of Technology, India

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Area of Interest:

Physics
Semiconductor Laser Physics
Plasma Physic
Optics
High Energy Physics

Selected Publications

  1. Pramanik, A.K., N. Kant and J. Rajput, 2022. GeV electron acceleration by trapezoidal laser pulse envelope under combined effect of frequency chirp and axial magnetic field in vacuum. IEEE Trans. Plasma Sci., 50: 3303-3307.
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  2. Singh, J., J. Rajput, H.S. Ghotra and N. Kant, 2021. Electron acceleration by a radially polarised cosh-Gaussian laser beam in vacuum. Commun. Theor. Phys., Vol. 73. 10.1088/1572-9494/ac02b6.
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  3. Rajput, J. and N. Kant, 2021. Electron acceleration to GeV energy by an axicon Gaussian laser pulse in a preformed ion channel. Optik, Vol. 225. 10.1016/j.ijleo.2020.165836.
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  4. Mehta, A., J. Rajput and N. Kant, 2021. Numerical investigation of nonlinear current density and terahertz field induced by laser-plasma interaction. Optik, Vol. 248. 10.1016/j.ijleo.2021.168068.
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  5. Singh, J., J. Rajput and N. Kant, 2020. Electron acceleration by cosh-Gaussian laser beam in the presence of axial magnetic field. J. Phys.: Conf. Ser., Vol. 1531. 10.1088/1742-6596/1531/1/012027.
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  6. Rajput, J. and N. Kant, 2020. Efficient electron acceleration by circularly polarized laser on a plasma density ramp. Eur. J. Mol. Clin. Med., 7: 3442-3445.
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  7. Mehta, A., N. Kant, V. Thakur and J. Rajput, 2020. Numerical study of nonlinear current density produced by beating of two chirped lasers in plasma with density-ripple. J. Phys.: Conf. Ser., Vol. 1531. 10.1088/1742-6596/1531/1/012037.
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  8. Mehta, A., J. Rajput, K. Kang and N. Kant, 2020. Terahertz generation by beating of two chirped pulse lasers in spatially periodic density plasma. Laser Phys., Vol. 30. 10.1088/1555-6611/ab7238.
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  9. Kaur, K.G., P. Kumar, N. Kant and J. Rajput, 2020. Non linear surface plasma wave assisted electron acceleration in metal structure. J. Phys.: Conf. Ser., Vol. 1531. 10.1088/1742-6596/1531/1/012021.
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  10. Kant, N., J. Rajput and A. Singh, 2020. Enhanced electron acceleration by a chirped tightly focused laser in vacuum in the presence of axial magnetic field. Eur. Phys. J. D, Vol. 74. 10.1140/epjd/e2020-100241-y.
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  11. Bukhari, S.S.A.S., N. Kant and J. Rajput, 2020. Effect of pulsed magnetic field on electron acceleration due to plasma wave generated by plane polarised laser. J. Phys.: Conf. Ser., Vol. 1531. 10.1088/1742-6596/1531/1/012019.
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  12. Agarwal, S., N. Kant and J. Rajput, 2020. Magnetic field assisted electron acceleration due to inverse free electron laser. J. Phys.: Conf. Ser., Vol. 1531. 10.1088/1742-6596/1531/1/012042.
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  13. Mehta, A., J. Rajput and N. Kant, 2019. Effect of frequency-chirped laser pulses on terahertz radiation generation in magnetized plasma. Laser Phys., Vol. 29. 10.1088/1555-6611/ab344f.
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  14. Kant, N., J. Rajput and A. Singh, 2019. Magnetic field assisted enhanced electron acceleration due to a chirped echelon phase modulated laser in vacuum. Optik, 182: 858-865.
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  15. Kant, N., J. Rajput and A. Singh, 2018. Electron acceleration from rest to GeV energy by chirped axicon Gaussian laser pulse in vacuum in the presence of wiggler magnetic field. High Energy Density Phys., 26: 16-22.
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  16. Singh, A., J. Rajput and N. Kant, 2017. Combined influence of azimuthal and axial magnetic fields on resonant electron acceleration in plasma. Laser Phys., Vol. 27. 10.1088/1555-6611/aa8759.
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  17. Kant, N., J. Rajput, P. Giri and A. Singh, 2016. Effect of axial magnetic field on axicon laser-induced electron acceleration. High Energy Density Phys., 18: 20-25.
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  18. Rajput, J., N. Kant, H. Singh and V. Nanda, 2009. Resonant third harmonic generation of a short pulse laser in plasma by applying a wiggler magnetic field. Opt. Commun., 282: 4614-4617.
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