Kiminori Kondo
Japan Atomic Energy Agency
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Featured researches published by Kiminori Kondo.
Optics Letters | 2012
K. Ogura; Mamiko Nishiuchi; Alexander S. Pirozhkov; Tsuyoshi Tanimoto; A. Sagisaka; Timur Zh. Esirkepov; M. Kando; Toshiyuki Shizuma; T. Hayakawa; Hiromitsu Kiriyama; Takuya Shimomura; Shyuji Kondo; Shuhei Kanazawa; Yoshiki Nakai; Hajime Sasao; Fumitaka Sasao; Y. Fukuda; Hironao Sakaki; Masato Kanasaki; Akifumi Yogo; Sergei V. Bulanov; Paul R. Bolton; Kiminori Kondo
Using a high-contrast (10(10):1) and high-intensity (10(21) W/cm(2)) laser pulse with the duration of 40 fs from an optical parametric chirped-pulse amplification/Ti:sapphire laser, a 40 MeV proton bunch is obtained, which is a record for laser pulse with energy less than 10 J. The efficiency for generation of protons with kinetic energy above 15 MeV is 0.1%.
Optics Letters | 2012
Hiromitsu Kiriyama; Takuya Shimomura; Hajime Sasao; Yoshiki Nakai; Manabu Tanoue; Shuji Kondo; Shuhei Kanazawa; Alexander S. Pirozhkov; Michiaki Mori; Y. Fukuda; Mamiko Nishiuchi; M. Kando; Sergei V. Bulanov; Keisuke Nagashima; Mitsuru Yamagiwa; Kiminori Kondo; Akira Sugiyama; Paul R. Bolton; T. Tajima; Noriaki Miyanaga
We demonstrate the temporal contrast enhancement in a petawatt-class Ti:sapphire chirped-pulse amplification (CPA) laser system. An extra saturable absorber, introduced downstream after a low-gain optical parametric chirped-pulse amplification (OPCPA) preamplifier, has improved the temporal contrast in the system to 1.4×10(12) on the subnanosecond time scale at 70 TW power level. We have achieved 28 J of uncompressed broadband output energy with this system, indicating the potential for reaching peak powers near 600 TW.
Applied Optics | 2010
Hiromitsu Kiriyama; Mori Michiaki; Yoshiki Nakai; Takuya Shimomura; Hajime Sasao; M. Tanaka; Yoshihiro Ochi; Manabu Tanoue; Hajime Okada; Shuji Kondo; Shuhei Kanazawa; A. Sagisaka; I. Daito; Daisuke Wakai; Fumitaka Sasao; Masayuki Suzuki; Hideyuki Kotakai; Kiminori Kondo; Akira Sugiyama; S. V. Bulanov; Paul R. Bolton; Hiroyuki Daido; S. Kawanishi; J. L. Collier; Cristina Hernandez-Gomez; C. J. Hooker; Klaus Ertel; Toyoaki Kimura; T. Tajima
We have developed a femtosecond high-intensity laser system that combines both Ti:sapphire chirped-pulse amplification (CPA) and optical parametric CPA (OPCPA) techniques and produces more than 30 J broadband output energy, indicating the potential for achieving peak powers in excess of 500 TW. With a cleaned high-energy seeded OPCPA preamplifier as a front end in the system, for the compressed pulse without pumping the final amplifier, we found that the temporal contrast in this system exceeds 10(10) on the subnanosecond time scales, and is near 10(12) on the nanosecond time scale prior to the peak of the main femtosecond pulse. Using diffractive optical elements for beam homogenization of a 100 J level high-energy Nd:glass green pump laser in a Ti:sapphire final amplifier, we have successfully generated broadband high-energy output with a near-perfect top-hat-like intensity distribution.
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2011
S. V. Bulanov; T. Zh. Esirkepov; Y. Hayashi; M. Kando; Hiromitsu Kiriyama; James Koga; Kiminori Kondo; H. Kotaki; A. S. Pirozhkov; Stepan Bulanov; Alexei Zhidkov; Pisin Chen; D. Neely; Y. Kato; N. B. Narozhny; G. Korn
We propose the experiments on the collision of laser light and high intensity electromagnetic pulses generated by relativistic flying mirrors, with electron bunches produced by a conventional accelerator and with laser wake field accelerated electrons for studying extreme field limits in the nonlinear interaction of electromagnetic waves. The regimes of dominant radiation reaction, which completely changes the electromagnetic wave–matter interaction, will be revealed in the laser plasma experiments. This will result in a new powerful source of ultra short high brightness gamma-ray pulses. A possibility of the demonstration of the electron–positron pair creation in vacuum in a multi-photon processes can be realized. This will allow modeling under terrestrial laboratory conditions neutron star magnetospheres, cosmological gamma ray bursts and the Leptonic Era of the Universe.
IEEE Journal of Selected Topics in Quantum Electronics | 2015
Hiromitsu Kiriyama; Michiaki Mori; Alexander S. Pirozhkov; K. Ogura; A. Sagisaka; Akira Kon; Timur Zh. Esirkepov; Y. Hayashi; H. Kotaki; Masato Kanasaki; Hironao Sakaki; Yuji Fukuda; James Koga; Mamiko Nishiuchi; M. Kando; Sergei V. Bulanov; Kiminori Kondo; Paul R. Bolton; Ondrej Slezak; David Vojna; Magdalena Sawicka-Chyla; Venkatesan Jambunathan; Antonio Lucianetti; Tomas Mocek
A high-contrast high-intensity petawatt-class Ti:sapphire chirped-pulse amplification laser has been developed for research on high field science. A saturable absorber and a low-gain optical parametric chirped-pulse amplification preamplifier in the front-end have improved the temporal contrast in the system to ∼
Nuclear Instruments & Methods in Physics Research Section A-accelerators Spectrometers Detectors and Associated Equipment | 2014
Timur Zh. Esirkepov; James Koga; Atsushi Sunahara; Toshimasa Morita; Masaharu Nishikino; Kei Kageyama; Hideo Nagatomo; Katsunobu Nishihara; A. Sagisaka; H. Kotaki; T. Nakamura; Y. Fukuda; Hajime Okada; Alexander S. Pirozhkov; Akifumi Yogo; Mamiko Nishiuchi; Hiromitsu Kiriyama; Kiminori Kondo; M. Kando; S. V. Bulanov
2 times 10^{12}
Physics Letters A | 2015
Timur Zh. Esirkepov; Stepan Bulanov; James Koga; M. Kando; Kiminori Kondo; N. N. Rosanov; G. Korn; Sergei V. Bulanov
on the subnanosecond time scale at the ∼70 TW power level. In addition to the high-contrast broadband high-energy output from the final amplifier has been achieved with a flat-top spatial profile with a filling factor of ∼70%. This is the result of pump beam spatial profile homogenization with diffractive optical elements. The system produces the uncompressed output pulse energy of 29 J, indicating the capability for reaching a peak power of ∼600 TW. We discuss in detail the design, performance, and characterization of the laser including output power, pulse duration, and spatiotemporal beam quality. We also describe the on-going upgrade of the laser system and some applications for the laser in relativistic dominated laser–matter interactions.
New Journal of Physics | 2014
Alexander S. Pirozhkov; M. Kando; Timur Zh. Esirkepov; P. Gallegos; H. Ahmed; Eugene N. Ragozin; Anatoly Ya. Faenov; Tatiana A. Pikuz; Tetsuya Kawachi; A. Sagisaka; James Koga; M. Coury; J. S. Green; P. S. Foster; C. M. Brenner; B. Dromey; Dan Symes; Michiaki Mori; K. Kawase; Takashi Kameshima; Y. Fukuda; Liming Chen; I. Daito; K. Ogura; Y. Hayashi; H. Kotaki; Hiromitsu Kiriyama; Hajime Okada; Nobuyuki Nishimori; Takashi Imazono
Abstract When a finite contrast petawatt laser pulse irradiates a micron-thick foil, a prepulse (including amplified spontaneous emission) creates a preplasma, where an ultrashort relativistically strong portion of the laser pulse (the main pulse) acquires higher intensity due to relativistic self-focusing and undergoes fast depletion transferring energy to fast electrons. If the preplasma thickness is optimal, the main pulse can reach the target accelerating fast ions more efficiently than an ideal, infinite contrast, laser pulse. A simple analytical model of a target with preplasma formation is developed and the radiation pressure dominant acceleration of ions in this target is predicted. The preplasma formation by a nanosecond prepulse is analyzed with dissipative hydrodynamic simulations. The main pulse interaction with the preplasma is studied with multi-parametric particle-in-cell simulations. The optimal conditions for hundreds of MeV ion acceleration are found with accompanying effects important for diagnostics, including high-order harmonics generation.
Japanese Journal of Applied Physics | 2012
Masato Kanasaki; Y. Fukuda; Hironao Sakaki; Toshihiko Hori; M. Tampo; Kiminori Kondo; Satoshi Kurashima; Tomihiro Kamiya; Keiji Oda; Tomoya Yamauchi
Abstract In an electromagnetic standing wave formed by two super-intense colliding laser pulses, radiation reaction totally modifies the electron motion. The quantum corrections to the electron motion and the radiation reaction force can be independently small or large, depending on the laser intensity and wavelength, thus dividing the parameter space into 4 domains. The electron motion evolves to limit cycles and strange attractors when radiation reaction dominates. This creates a new framework for high energy physics experiments on the interaction of energetic charged particle beams and colliding super-intense laser pulses.
Japanese Journal of Applied Physics | 2016
Yu Miyamoto; Yuma Fujii; Masafumi Yamano; Toru Harigai; Yoshiyuki Suda; Hirofumi Takikawa; Takeshi Kawano; Mamiko Nishiuchi; Hironao Sakaki; Kiminori Kondo
We demonstrate a new high-order harmonic generation mechanism reaching the water window spectral region in experiments with multiterawatt femtosecond lasers irradiating gas jets. A few hundred harmonic orders are resolved, giving μJ/sr pulses. Harmonics are collectively emitted by an oscillating electron spike formed at the joint of the boundaries of a cavity and bow wave created by a relativistically self-focusing laser in underdense plasma. The spike sharpness and stability are explained by catastrophe theory. The mechanism is corroborated by particle-in-cell simulations.