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pro vyhledávání: '"WALCZAK R"'
Autor:
Picksley, A., Chappell, J., Archer, E., Bourgeois, N., Cowley, J., Emerson, D. R., Feder, L., Gu, X. J., Jakobsson, O., Ross, A. J., Wang, W., Walczak, R., Hooker, S. M.
We describe a simple scheme, truncated-channel injection, to inject electrons directly into the wakefield driven by a drive pulse guided by an all-optical plasma channel. We use this approach to generate dark-current-free 1.2 GeV, 4.5 % relative ener
Externí odkaz:
http://arxiv.org/abs/2307.13689
Autor:
Jonnerby, J., von Boetticher, A., Holloway, J., Corner, L., Picksley, A., Ross, A. J., Shalloo, R. J., Thornton, C., Bourgeois, N., Walczak, R., Hooker, S. M.
We present the first measurements of the temporal decay rate of one-dimensional, linear Langmuir waves excited by an ultra-short laser pulse. Langmuir waves with relative amplitudes of approximately $6\%$ were driven by $1.7$ J, $50$ fs laser pulses
Externí odkaz:
http://arxiv.org/abs/2306.06438
Autor:
Mewes, S. M., Boyle, G. J., Pousa, A. Ferran, Shalloo, R. J., Osterhoff, J., Arran, C., Corner, L., Walczak, R., Hooker, S. M., Thévenet, M.
In recent years, hydrodynamic optical-field-ionized (HOFI) channels have emerged as a promising technique to create laser waveguides suitable for guiding tightly-focused laser pulses in a plasma, as needed for laser-plasma accelerators. While experim
Externí odkaz:
http://arxiv.org/abs/2305.16779
Publikováno v:
Physical Review Letters Vol. 127, No. 18 (2021)
We describe a new approach for driving GeV-scale plasma accelerators with long laser pulses. We show that the temporal phase of a long, high-energy driving laser pulse can be modulated periodically by co-propagating it with low-amplitude plasma wave
Externí odkaz:
http://arxiv.org/abs/2110.00417
Publikováno v:
Phys. Rev. Accel. Beams 25, 011301 (2022)
We demonstrate experimentally that hydrodynamic optical-field-ionized (HOFI) plasma channels can be generated at kHz-scale pulse repetition rates, in a static gas cell and for an extended period. Using a pump-probe arrangement, we show via transverse
Externí odkaz:
http://arxiv.org/abs/2110.00448
Autor:
Picksley, A., Alejo, A., Shalloo, R. J., Arran, C., von Boetticher, A., Corner, L., Holloway, J. A., Jonnerby, J., Jakobsson, O., Thornton, C., Walczak, R., Hooker, S. M.
Publikováno v:
Phys. Rev. E 102, 053201 (2020)
We demonstrate through experiments and numerical simulations that low-density, low-loss, meter-scale plasma channels can be generated by employing a conditioning laser pulse to ionize the neutral gas collar surrounding a hydrodynamic optical-field-io
Externí odkaz:
http://arxiv.org/abs/2008.13683
Autor:
Picksley, A., Alejo, A., Cowley, J., Bourgeois, N., Corner, L., Feder, L., Holloway, J., Jones, H., Jonnerby, J., Milchberg, H. M., Reid, L. R., Ross, A. J., Walczak, R., Hooker, S. M.
Publikováno v:
Phys. Rev. Accel. Beams 23, 081303 (2020)
Hydrodynamic optically-field-ionized (HOFI) plasma channels up to 100mm long are investigated. Optical guiding is demonstrated of laser pulses with a peak input intensity of $6\times10^{17}$ W cm$^{-2}$ through 100mm long plasma channels with on-axis
Externí odkaz:
http://arxiv.org/abs/2006.00810
Autor:
Shalloo, R. J., Arran, C., Picksley, A., von Boetticher, A., Corner, L., Holloway, J., Hine, G., Jonnerby, J., Milchberg, H. M., Thornton, C., Walczak, R., Hooker, S. M.
Publikováno v:
Phys. Rev. Accel. Beams 22, 041302 (2019)
We demonstrate optical guiding of high-intensity laser pulses in long, low density hydrodynamic optical-field-ionized (HOFI) plasma channels. An axicon lens is used to generate HOFI plasma channels with on-axis electron densities as low as $n_e(0) =
Externí odkaz:
http://arxiv.org/abs/1902.05596
Publikováno v:
Physical Review Accelerators and Beams 21, 103501 (2018)
We generalize the temporally encoded spectral shifting (TESS) analysis for measuring plasma wakefields using spectral interferometry to dissimilar probe pulses of arbitrary spectral profile and to measuring nonlinear wakefields. We demonstrate that t
Externí odkaz:
http://arxiv.org/abs/1810.06265
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