Hideki Ishitsuka
University of Tokyo
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Publication
Featured researches published by Hideki Ishitsuka.
Physical Review D | 2006
Kazuhiro Yamamoto; Shinji Miyoki; Takashi Uchiyama; Hideki Ishitsuka; Masatake Ohashi; Kazuaki Kuroda; Takayuki Tomaru; Nobuaki Sato; Toshikazu Suzuki; T. Haruyama; Akira Yamamoto; T. Shintomi; Kenji Numata; Koichi Waseda; Kazuhiko Ito; Koji Watanabe
We have measured the mechanical loss of a dielectric multilayer reflective coating (ion-beam sputtered
Classical and Quantum Gravity | 2003
Kazuaki Kuroda; Masatake Ohashi; Shinji Miyoki; Takashi Uchiyama; Hideki Ishitsuka; Kazuhiro Yamamoto; K. Kasahara; M. K. Fujimoto; Seiji Kawamura; Ryutaro Takahashi; Toshitaka Yamazaki; Koji Arai; Daisuke Tatsumi; Akitoshi Ueda; Mitsuhiro Fukushima; Shuichi Sato; Shigeo Nagano; Y. Tsunesada; Zong Hong Zhu; T. Shintomi; Akira Yamamoto; T. Suzuki; Yoshio Saito; T. Haruyama; Nobuaki Sato; Yasuo Higashi; Takayuki Tomaru; Kimio Tsubono; Masaki Ando; A. Takamori
{\mathrm{SiO}}_{2}
Classical and Quantum Gravity | 2004
Shinji Miyoki; Takashi Uchiyama; Kazuhiro Yamamoto; H Hayakawa; K. Kasahara; Hideki Ishitsuka; Masatake Ohashi; Kazuaki Kuroda; Daisuke Tatsumi; Souichi Telada; Masaki Ando; Takayuki Tomaru; T. Suzuki; Nobuaki Sato; T. Haruyama; Y Higashi; Y. Saito; Akira Yamamoto; T. Shintomi; Akito Araya; Shuzo Takemoto; Toshihiro Higashi; H Momose; Junpei Akamatsu; Wataru Morii
and
arXiv: General Relativity and Quantum Cosmology | 2008
Kazuhiro Yamamoto; Takashi Uchiyama; Shinji Miyoki; Masatake Ohashi; Kazuaki Kuroda; Hideki Ishitsuka; Tomotada Akutsu; Souichi Telada; Takayuki Tomaru; T. Suzuki; Nobuaki Sato; Yoshio Saito; Yasuo Higashi; T. Haruyama; Akira Yamamoto; Takakazu Shintomi; Daisuke Tatsumi; Masaki Ando; Hideyuki Tagoshi; Nobuyuki Kanda; N Awaya; Shougo Yamagishi; H. Takahashi; Akito Araya; A. Takamori; Shuzo Takemoto; Toshihiro Higashi; H Hayakawa; Wataru Morii; Junpei Akamatsu
{\mathrm{Ta}}_{2}{\mathrm{O}}_{5}
Classical and Quantum Gravity | 2007
Daisuke Tatsumi; Ryutaro Takahashi; Koji Arai; Noriyasu Nakagawa; K. Agatsuma; Toshitaka Yamazaki; Mitsuhiro Fukushima; Masa Katsu Fujimoto; A. Takamori; A. Bertolini; V. Sannibale; R. DeSalvo; S. Márka; Masaki Ando; Kimio Tsubono; Tomomi Akutsu; Kazuhiro Yamamoto; Hideki Ishitsuka; Takashi Uchiyama; Shinji Miyoki; Masatake Ohashi; Kazuaki Kuroda; Norichika Awaya; Nobuyuki Kanda; Akito Araya; Souichi Telada; Takayuki Tomaru; T. Haruyama; Akira Yamamoto; Nobuaki Sato
) in cooled mirrors. The loss was nearly independent of the temperature (
Classical and Quantum Gravity | 2004
Kazuhiro Yamamoto; Shinji Miyoki; Takashi Uchiyama; Hideki Ishitsuka; Masatake Ohashi; Kazuaki Kuroda; Takayuki Tomaru; Nobuaki Sato; T. Suzuki; T. Haruyama; Akira Yamamoto; T. Shintomi; Kenji Numata; Koichi Waseda; Kazuhiko Ito; Koji Watanabe
4\text{ }\text{ }\mathrm{K}\ensuremath{\sim}300\text{ }\text{ }\mathrm{K}
Journal of Physics: Conference Series | 2006
Takashi Uchiyama; Shinji Miyoki; Masatake Ohashi; Kazuaki Kuroda; Kazuhiro Yamamoto; Masao Tokunari; Tomomi Akutsu; Shohgo Kamagasako; Noriyasu Nakagawa; Hiroyuki Kirihara; K. Agatsuma; Hideki Ishitsuka; Daisuke Tatsumi; Souichi Telada; Masaki Ando; Takayuki Tomaru; Toshikazu Suzuki; Nobuaki Sato; T. Haruyama; Akira Yamamoto; Takakazu Shintomi
), frequency, optical loss, and stress caused by the coating, and the details of the manufacturing processes. The loss angle was
Cryogenics | 2001
Shinji Miyoki; Takayuki Tomaru; Hideki Ishitsuka; Masatake Ohashi; Kazuaki Kuroda; Daisuke Tatsumi; Takashi Uchiyama; Toshikazu Suzuki; Nobuaki Sato; T. Haruyama; Akira Yamamoto; T. Shintomi
(4\ensuremath{\sim}6)\ifmmode\times\else\texttimes\fi{}{10}^{\ensuremath{-}4}
Physical Review D | 2014
E. Hirose; K. Craig; Hideki Ishitsuka; I. W. Martin; Norikatsu Mio; Shigenori Moriwaki; P. G. Murray; Masatake Ohashi; S. Rowan; Yusuke Sakakibara; Toshikazu Suzuki; Kouichi Waseda; Kyohei Watanabe; Kazuhiro Yamamoto
. The temperature independence of this loss implies that the amplitude of the coating thermal noise, which is a severe limit in any precise measurement, is proportional to the square root of the temperature. Sapphire mirrors at 20 K satisfy the requirement concerning the thermal noise of even future interferometric gravitational wave detector projects on the ground, for example, LCGT.
Archive | 2006
Takashi Uchiyama; Shinji Miyoki; Masatake Ohashi; Kazuaki Kuroda; Kazuhiro Yamamoto; Masao Tokunari; Tomomi Akutsu; Noriyasu Nakagawa; Hiroyuki Kirihara; Hideki Ishitsuka; Daisuke Tatsumi; Souichi Telada; Masaki Ando; Takayuki Tomaru; Toshikazu Suzuki; T. Haruyama; Akira Yamamoto; T. Shintomi
The large-scale cryogenic gravitational wave telescope (LCGT) is the future project of the Japanese gravitational wave group. Two sets of 3 km arm length laser interferometric gravitational wave detectors will be built in a tunnel of Kamioka mine in Japan. LCGT will detect chirp waves from binary neutron star coalescence at 240 Mpc away with a S/N of 10. The expected number of detectable events in a year is two or three. To achieve the required sensitivity, several advanced techniques will be employed such as a low-frequency vibration-isolation system, a suspension point interferometer, cryogenic mirrors, a resonant side band extraction method, a high-power laser system and so on. We hope that the beginning of the project will be in 2005 and the observations will start in 2009.