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Holographic visualization of laser wakefields

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Holographic visualization of laser wakefields. / Dong, Peng; Reed, S. A.; Kalmykov, S. Y. et al.
In: New Journal of Physics, Vol. 12, 045016, 30.04.2010.

Research output: Contribution to Journal/MagazineJournal articlepeer-review

Harvard

Dong, P, Reed, SA, Kalmykov, SY, Li, Z-Y, Shvets, G, Matlis, NH, McGuffey, C, Bulanov, SS, Chyvkov, V, Kalintchenko, G, Krushelnick, K, Maksimchuk, A, Matsuoka, T, Thomas, AGR, Yanovsky, V & Downer, MC 2010, 'Holographic visualization of laser wakefields', New Journal of Physics, vol. 12, 045016. https://doi.org/10.1088/1367-2630/12/4/045016

APA

Dong, P., Reed, S. A., Kalmykov, S. Y., Li, Z-Y., Shvets, G., Matlis, N. H., McGuffey, C., Bulanov, S. S., Chyvkov, V., Kalintchenko, G., Krushelnick, K., Maksimchuk, A., Matsuoka, T., Thomas, A. G. R., Yanovsky, V., & Downer, M. C. (2010). Holographic visualization of laser wakefields. New Journal of Physics, 12, Article 045016. https://doi.org/10.1088/1367-2630/12/4/045016

Vancouver

Dong P, Reed SA, Kalmykov SY, Li Z-Y, Shvets G, Matlis NH et al. Holographic visualization of laser wakefields. New Journal of Physics. 2010 Apr 30;12:045016. doi: 10.1088/1367-2630/12/4/045016

Author

Dong, Peng ; Reed, S. A. ; Kalmykov, S. Y. et al. / Holographic visualization of laser wakefields. In: New Journal of Physics. 2010 ; Vol. 12.

Bibtex

@article{090518d075ba44be9515c83bb137b5f9,
title = "Holographic visualization of laser wakefields",
abstract = "We report 'snapshots' of laser-generated plasma accelerator structures acquired by frequency domain holography (FDH) and frequency domain shadowgraphy (FDS), techniques for visualizing quasi-static objects propagating near the speed of light. FDH captures images of sinusoidal wakes in mm-length plasmas of density 1<ne <5×1018 cm−3 from phase modulations they imprint on co-propagating probe pulses. Changes in the wake structure (such as the curvature of the wavefront), caused by the laser and plasma parameter variations from shot to shot, were observed. FDS visualizes laser-generated electron density bubbles in mm-length plasmas of density ne≥1019 cm−3 using amplitude modulations they imprint on co-propagating probe pulses. Variations in the spatio-temporal structure of bubbles are inferred from corresponding variations in the shape of 'bullets' of probe light trapped inside them and correlated with mono-energetic electron generation. Both FDH and FDS average over structural variations that occur during propagation through the plasma medium. We explore via simulations a generalization of FDH/FDS (termed frequency domain tomography (FDT)) that can potentially record a time sequence of quasi-static snapshots, like the frames of a movie, of the wake structure as it propagates through the plasma. FDT utilizes several probe–reference pulse pairs that propagate obliquely to the wake, along with tomographic reconstruction algorithms similar to those used in medical CAT scans.",
author = "Peng Dong and Reed, {S. A.} and Kalmykov, {S. Y.} and Z.-Y. Li and G. Shvets and Matlis, {N. H.} and Christopher McGuffey and Bulanov, {Stepan S.} and V. Chyvkov and Galina Kalintchenko and Karl Krushelnick and Anatoly Maksimchuk and Takeshi Matsuoka and Thomas, {Alexander George Roy} and Victor Yanovsky and Downer, {M. C.}",
year = "2010",
month = apr,
day = "30",
doi = "10.1088/1367-2630/12/4/045016",
language = "English",
volume = "12",
journal = "New Journal of Physics",
issn = "1367-2630",
publisher = "IOP Publishing Ltd",

}

RIS

TY - JOUR

T1 - Holographic visualization of laser wakefields

AU - Dong, Peng

AU - Reed, S. A.

AU - Kalmykov, S. Y.

AU - Li, Z.-Y.

AU - Shvets, G.

AU - Matlis, N. H.

AU - McGuffey, Christopher

AU - Bulanov, Stepan S.

AU - Chyvkov, V.

AU - Kalintchenko, Galina

AU - Krushelnick, Karl

AU - Maksimchuk, Anatoly

AU - Matsuoka, Takeshi

AU - Thomas, Alexander George Roy

AU - Yanovsky, Victor

AU - Downer, M. C.

PY - 2010/4/30

Y1 - 2010/4/30

N2 - We report 'snapshots' of laser-generated plasma accelerator structures acquired by frequency domain holography (FDH) and frequency domain shadowgraphy (FDS), techniques for visualizing quasi-static objects propagating near the speed of light. FDH captures images of sinusoidal wakes in mm-length plasmas of density 1<ne <5×1018 cm−3 from phase modulations they imprint on co-propagating probe pulses. Changes in the wake structure (such as the curvature of the wavefront), caused by the laser and plasma parameter variations from shot to shot, were observed. FDS visualizes laser-generated electron density bubbles in mm-length plasmas of density ne≥1019 cm−3 using amplitude modulations they imprint on co-propagating probe pulses. Variations in the spatio-temporal structure of bubbles are inferred from corresponding variations in the shape of 'bullets' of probe light trapped inside them and correlated with mono-energetic electron generation. Both FDH and FDS average over structural variations that occur during propagation through the plasma medium. We explore via simulations a generalization of FDH/FDS (termed frequency domain tomography (FDT)) that can potentially record a time sequence of quasi-static snapshots, like the frames of a movie, of the wake structure as it propagates through the plasma. FDT utilizes several probe–reference pulse pairs that propagate obliquely to the wake, along with tomographic reconstruction algorithms similar to those used in medical CAT scans.

AB - We report 'snapshots' of laser-generated plasma accelerator structures acquired by frequency domain holography (FDH) and frequency domain shadowgraphy (FDS), techniques for visualizing quasi-static objects propagating near the speed of light. FDH captures images of sinusoidal wakes in mm-length plasmas of density 1<ne <5×1018 cm−3 from phase modulations they imprint on co-propagating probe pulses. Changes in the wake structure (such as the curvature of the wavefront), caused by the laser and plasma parameter variations from shot to shot, were observed. FDS visualizes laser-generated electron density bubbles in mm-length plasmas of density ne≥1019 cm−3 using amplitude modulations they imprint on co-propagating probe pulses. Variations in the spatio-temporal structure of bubbles are inferred from corresponding variations in the shape of 'bullets' of probe light trapped inside them and correlated with mono-energetic electron generation. Both FDH and FDS average over structural variations that occur during propagation through the plasma medium. We explore via simulations a generalization of FDH/FDS (termed frequency domain tomography (FDT)) that can potentially record a time sequence of quasi-static snapshots, like the frames of a movie, of the wake structure as it propagates through the plasma. FDT utilizes several probe–reference pulse pairs that propagate obliquely to the wake, along with tomographic reconstruction algorithms similar to those used in medical CAT scans.

U2 - 10.1088/1367-2630/12/4/045016

DO - 10.1088/1367-2630/12/4/045016

M3 - Journal article

VL - 12

JO - New Journal of Physics

JF - New Journal of Physics

SN - 1367-2630

M1 - 045016

ER -