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Dive into the research topics where M. Kando is active.

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Featured researches published by M. Kando.


Physical Review Letters | 2009

Energy Increase in Multi-MeV Ion Acceleration in the Interaction of a Short Pulse Laser with a Cluster-Gas Target

Y. Fukuda; A. Ya. Faenov; M. Tampo; T. A. Pikuz; T. Nakamura; M. Kando; Y. Hayashi; Akifumi Yogo; Hironao Sakaki; Takashi Kameshima; A. S. Pirozhkov; K. Ogura; M. Mori; T. Zh. Esirkepov; James Koga; A. S. Boldarev; V. A. Gasilov; A. I. Magunov; T. Yamauchi; R. Kodama; Paul R. Bolton; Y. Kato; T. Tajima; Hiroyuki Daido; S. V. Bulanov

We demonstrate generation of 10-20 MeV/u ions with a compact 4 TW laser using a gas target mixed with submicron clusters, corresponding to tenfold increase in the ion energies compared to previous experiments with solid targets. It is inferred that the high energy ions are generated due to formation of a strong dipole vortex structure. The demonstrated method has a potential to construct compact and high repetition rate ion sources for hadron therapy and other applications.


Optics Letters | 2000

Optical guidance of terrawatt laser pulses by the implosion phase of a fast Z-pinch discharge in a gas-filled capillary

Tomonao Hosokai; M. Kando; Hideki Dewa; H. Kotaki; Syuji Kondo; Noboru Hasegawa; Kazuhisa Nakajima; Kazuhiko Horioka

A new method of optical guidance by the implosion phase of a fast Z-pinch discharge in a gas-filled capillary is proposed. An imploding plasma column has a concave electron-density profile in the radial direction, just before a stagnation phase driven by a converging current sheet and a shock wave. The feasibility of optical guidance of a high-intensity (>1 x 10(17) W/cm(2)) Ti:sapphire laser pulse by use of this method over a distance of 2 cm, corresponding to 12.5 times the Rayleigh length, has been experimentally demonstrated. The guiding-channel formation process was directly probed with a He-Ne laser beam. The electron density in the fully ionized channel was estimated to be 2.0 x 10(17) cm(-3) on the axis and 7.0 x 10(17) cm(-3) on the peaks of the channel edge, with a diameter of 70 mum, as indicated by the experimental results, which were corroborated by a magnetohydrodynamics simulation.


Physical Review Letters | 2012

High-Power γ-Ray Flash Generation in Ultraintense Laser-Plasma Interactions

T. Nakamura; James Koga; Timur Zh. Esirkepov; M. Kando; G. Korn; Sergei V. Bulanov

When high-intensity laser interaction with matter enters the regime of dominated radiation reaction, the radiation losses open the way for producing short pulse high-power γ-ray flashes. The γ-ray pulse duration and divergence are determined by the laser pulse amplitude and by the plasma target density scale length. On the basis of theoretical analysis and particle-in-cell simulations with the radiation friction force incorporated, optimal conditions for generating a γ-ray flash with a tailored overcritical density target are found.


Physics of Plasmas | 2004

Head-on injection of a high quality electron beam by the interaction of two laser pulses

H. Kotaki; S. Masuda; M. Kando; James Koga; Kunihisa Nakajima

High quality intense relativistic electron beams are generated by the interaction of two colliding laser pulses to inject plasma electrons into a wakefield excited by one of the laser pulses. The mechanism of the injection is analyzed theoretically and the generation of a high quality electron beam is verified by the numerical simulation. An electron beam has a small energy spread of 1%, ultrashort pulse duration less than 10 fs and normalized transverse emittance less than 1 π mm mrad.


Physical Review Letters | 2007

Demonstration of laser-frequency upshift by electron-density modulations in a plasma wakefield.

M. Kando; Y. Fukuda; Alexander S. Pirozhkov; Jinglong Ma; I. Daito; Liming Chen; T. Zh. Esirkepov; K. Ogura; T. Homma; Y. Hayashi; H. Kotaki; A. Sagisaka; Michiaki Mori; James Koga; Hiroyuki Daido; S. V. Bulanov; Toyoaki Kimura; Y. Kato; T. Tajima

Since the advent of chirped pulse amplification1 the peak power of lasers has grown dramatically and opened the new branch of high field science, delivering the focused irradiance, electric fields of which drive electrons into the relativistic regime. In a plasma wake wave generated by such a laser, modulations of the electron density naturally and robustly take the shape of paraboloidal dense shells, separated by evacuated regions, moving almost at the speed of light. When we inject another counter-propagating laser pulse, it is partially reflected from the shells, acting as relativistic flying (semi-transparent) mirrors, producing an extremely time-compressed frequency-multiplied pulse which may be focused tightly to the diffraction limit. This is as if the counterstreaming laser pulse bounces off a relativistically swung tennis racket, turning the ball of the laser photons into another ball of coherent X-ray photons but with a form extremely relativistically compressed to attosecond and zeptosecond levels. Here we report the first demonstration of the frequency multiplication detected from the reflection of a weak laser pulse in the region of the wake wave generated by the driver pulse in helium plasma. This leads to the possibility of very strong pulse compression and extreme coherent light intensification. This Relativistic Tennis with photon beams is demonstrated leading to the possibility toward reaching enormous electromagnetic field intensification and finally approaching the Schwinger field, toward which the vacuum nonlinearly warps and eventually breaks, producing electron-positron pairs.


Optics Letters | 2012

Proton acceleration to 40 MeV using a high intensity, high contrast optical parametric chirped-pulse amplification/Ti:sapphire hybrid laser system.

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%.


Physics of Plasmas | 2008

Controlled electron injection into the wake wave using plasma density inhomogeneity

A. V. Brantov; T. Zh. Esirkepov; M. Kando; H. Kotaki; V. Yu. Bychenkov; S. V. Bulanov

The electron injection, for the laser wake field accelerator, controlled through the plasma density inhomogeneity is studied on a basis of analytical estimates and two- and three-dimensional particle-in-cell simulations. The injection scheme requires a concordance of the density scale length and laser intensity. It is shown that at a sloping inhomogeneity of plasma the wave breaking produces stronger singularity of the electron density than at a density discontinuity, but develops slower. With the help of simulations for a moderate laser intensity, we demonstrate the optimal plasma density gradient, where the electron injection into the wake wave forms the electron beam with low divergence, small energy spread and high energy.


Physics of Plasmas | 2007

Frequency multiplication of light back-reflected from a relativistic wake wave

A. S. Pirozhkov; Jinglong Ma; M. Kando; T. Zh. Esirkepov; Y. Fukuda; L. M. Chen; I. Daito; K. Ogura; T. Homma; Y. Hayashi; H. Kotaki; A. Sagisaka; Michiaki Mori; James Koga; Tetsuya Kawachi; Hiroyuki Daido; S. V. Bulanov; Toyoaki Kimura; Y. Kato; T. Tajima

A method of coherent high-frequency electromagnetic radiation generation, proposed by Bulanov, Esirkepov, and Tajima [Phys. Rev. Lett. 91, 085001 (2003)], is experimentally demonstrated. This method is based on the radiation frequency multiplication during reflection at a mirror flying with relativistic velocity. The relativistic mirror is formed by the electron density modulations in a strongly nonlinear wake wave, excited in an underdense plasma in the wake behind an ultrashort laser pulse. In our experiments, the reflection of a countercrossing laser pulse from the wake wave is observed. The detected frequency multiplication factor is in the range from 55 to 114, corresponding to a reflected radiation wavelength from 7 to 15nm. This may open a way towards tunable high-intensity sources of ultrashort coherent electromagnetic pulses in the extreme ultraviolet and x-ray spectral regions. Parameters of the reflecting wake wave can be determined using the reflected radiation as a probe.


Applied Physics Letters | 2008

Soft x-ray source for nanostructure imaging using femtosecond-laser-irradiated clusters

Y. Fukuda; A. Ya. Faenov; T. A. Pikuz; M. Kando; H. Kotaki; I. Daito; Jinglong Ma; L. M. Chen; T. Homma; K. Kawase; Takashi Kameshima; Tetsuya Kawachi; Hiroyuki Daido; Toyoaki Kimura; T. Tajima; Y. Kato; S. V. Bulanov

The intense soft x-ray light source using the supersonic expansion of the mixed gas of He and CO2, when irradiated by a femtosecond Ti:sapphire laser pulse, is observed to enhance the radiation of soft x-rays from the CO2 clusters. Using this soft x-ray emissions, nanostructure images of 100-nm-thick Mo foils in a wide field of view (mm2 scale) with high spatial resolution (800nm) are obtained with high dynamic range LiF crystal detectors. The local inhomogeneities of soft x-ray absorption by the nanometer-thick foils is measured with an accuracy of less than ±3%.


Physics of Plasmas | 2005

Quasi-monoenergetic electron beam generation during laser pulse interaction with very low density plasmas

Atsushi Yamazaki; H. Kotaki; I. Daito; M. Kando; S. V. Bulanov; T. Zh. Esirkepov; Shuji Kondo; Shuhei Kanazawa; T. Homma; Kazuhisa Nakajima; Yuji Oishi; Takuya Nayuki; Takashi Fujii; Koshichi Nemoto

The results of experiments are presented for the single laser pulse interaction with a very low density gas target, under the conditions when the generated wake wave is below the wave-breaking threshold and the laser pulse power is lower than the critical power for relativistic self-focusing. A quasi-monoenergetic electron beam is found to be stably generated for various laser pulse intensity values by controlling the acceleration length. The results of two-dimensional particle-in-cell simulations show that for the electron acceleration an additional mechanism of electron injection into the acceleration phase is required. It is demonstrated that the longitudinal inhomogeneity of the plasma density leads to the electron injection.

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H. Kotaki

Japan Atomic Energy Research Institute

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James Koga

Japan Atomic Energy Agency

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Y. Fukuda

Japan Atomic Energy Agency

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S. V. Bulanov

Japan Atomic Energy Agency

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Y. Hayashi

Japan Atomic Energy Agency

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A. S. Pirozhkov

Japan Atomic Energy Agency

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K. Ogura

Japan Atomic Energy Agency

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Sergei V. Bulanov

Japan Atomic Energy Agency

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T. Zh. Esirkepov

Japan Atomic Energy Agency

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