Solar abundance ratios of the iron-peak elements in the Perseus cluster
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Matteo Guainazzi | Ryuichi Fujimoto | Hideyuki Mori | Ryo Iizuka | Manabu Ishida | Yoshitaka Ishisaki | Jelle de Plaa | Jan-Willem den Herder | Yasuo Tanaka | Massimiliano Galeazzi | Yoh Takei | Makoto Sawada | Dan McCammon | Yoshiyuki Inoue | Yasushi Fukazawa | Motohide Kokubun | Aya Kubota | Naomi Ota | Kazutaka Yamaoka | Hideyo Kunieda | Takashi Okajima | Takuya Miyazawa | Akihiro Furuzawa | Yoshito Haba | Shigeo Yamauchi | Marshall W. Bautz | Esra Bulbul | Yang Soong | Satoshi Sugita | Teruaki Enoto | Cor P. de Vries | Yuichiro Ezoe | Ikuyuki Mitsuishi | Kazuhisa Mitsuda | Koji Mori | Yohko Tsuboi | Masahiro Tsujimoto | Takayoshi Kohmura | Hiroshi Murakami | Kumi Ishikawa | Hirofumi Noda | Takao Nakagawa | Daniel Maier | Marc Audard | Richard L. Kelley | Felix Aharonian | Fumie Akimoto | Maria Chernyakova | Margherita Giustini | Andrea Goldwurm | Katsuhiro Hayashi | Ann Hornschemeier | Yuto Ichinohe | Jelle Kaastra | Shu Koyama | Peter Kretschmar | Michael Loewenstein | Kyoko Matsushita | Missagh Mehdipour | Shin Mineshige | Koji Mukai | Hiroshi Nakajima | Hirokazu Odaka | Stéphane Paltani | Samar Safi-Harb | Kazuhiro Sakai | Goro Sato | Hiromi Seta | Megumi Shidatsu | Yasuharu Sugawara | Francesco Tombesi | Hiroyuki Uchida | Hideki Uchiyama | Shutaro Ueda | Shin'ichiro Uno | Eugenio Ursino | Shin Watanabe | Shinya Yamada | Yoichi Yatsu | Daisuke Yonetoku | Irina Zhuravleva | Brian J. Williams | Philippe Laurent | Shin'ichiro Takeda | Takayuki Hayashi | Brian R. McNamara | Peter J. Serlemitsos | Knox S. Long | Frits Paerels | Hiroshi Tsunemi | Tadayasu Dotani | Hiroshi Tomida | Masachika Iwai | Masayoshi Nobukawa | Junko S. Hiraga | Kumiko K. Nobukawa | Aya Bamba | John P. 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Mehdipour | K. Yamaoka | K. Pottschmidt | Y. Yatsu | A. Szymkowiak | D. Yonetoku | I. Zhuravleva | M. Galeazzi | P. Serlemitsos | H. Akamatsu | S. Yamada | Y. Fukazawa | T. Mizuno | T. Okajima | K. Mukai | M. Chiao | I. Harrus | K. Nakazawa | Y. Ichinohe | N. Werner | F. Aharonian | H. Krimm | L. Angelini | J. Kataoka | E. Bulbul | A. Foster | Randall K. Smith | M. Loewenstein | F. Akimoto | H. Awaki | M. Axelsson | A. Bamba | M. Bautz | L. Brenneman | M. Chernyakova | E. Costantini | T. Dotani | K. Ebisawa | T. Enoto | C. Ferrigno | A. Furuzawa | A. Goldwurm | L. Gu | M. Guainazzi | Y. Haba | K. Hagino | K. Hamaguchi | I. Hatsukade | K. Hayashida | J. Hiraga | A. Hornschemeier | A. Hoshino | R. Iizuka | H. Inoue | Y. Inoue | M. Ishida | K. Ishikawa | S. Katsuda | T. Kitaguchi | T. Kohmura | M. Kokubun | S. Koyama | K. Koyama | P. Kretschmar | A. Kubota | H. Kunieda | P. Laurent | Shiu-Hang Lee | M. Leutenegger | D. Lumb | Y. Maeda | D. Maier | H. Matsumoto | K. Matsushita | B. McNamara | E. Miller | S. Mineshige | I. Mitsuishi | T. Miyazawa | H. Mori | K. Mori | H. Nakajima | T. Nakamori | S. Nakashima | K. Nobukawa | M. Nobukawa | H. Noda | H. Odaka | M. Ohno | N. Ota | C. Pinto | C. Reynolds | S. Safi-Harb | S. Saito | K. Sakai | G. Sato | M. Sawada | H. Seta | M. Shidatsu | A. Simionescu | Y. Soong | L. Stawarz | Y. Sugawara | S. Sugita | H. Tajima | Tadayuki Takahashi | S. Takeda | T. Tamura | Takaaki Tanaka | Yasuo Tanaka | M. Tashiro | Y. Tawara | Y. Terada | Y. Terashima | F. Tombesi | H. Tomida | Y. Tsuboi | H. Tsunemi | H. Uchida | H. Uchiyama | Y. Uchiyama | S. Ueda | Y. Ueda | S. Uno | E. Ursino | D. Wik | D. Wilkins | M. Yamauchi | S. Yamauchi | T. Yaqoob | A. Zoghbi | G. Madejski | J. D. den Herder | K. Hayashi | C. D. de Vries | Lukasz Stawarz | Makoto S. Tashiro | Toru Sasaki | Roger Blandford | Kosuke Sato | Greg Madejski | Christopher S. Reynolds | Shinya Saito | T. Kamae | Takaaki Tanaka | Shiu-Hang Lee | Elisa Costantini | Poshak Gandhi | Ilana M. Harrus | Tim Kallman | Tsuneyoshi Kamae | David Lumb | C. Megan Urry | T. Kallman | R. Mushotzky | J. de Plaa | G. V. Brown | C. M. Urry | Felix Hiroki Fumie Steven W. Lorella Marc Hisamitsu Magn Aharonian Akamatsu Akimoto Allen Angelini A | Olivier Limousine | Randall K. Smith | Takeshi Go Tsuru | S. Watanabe | Jonathan M. Miller | T. Hayashi | Y. Tanaka | M. Iwai | P. Coppi | L. Gallo | R. Blandford | Olivier Limousine | M. Ozaki | Toru Sasaki | Hiromitsu Takahashi | Takeshi Go Tsuru | S. Watanabe | E. Miller
[1] S. Blondin,et al. Evidence for sub-Chandrasekhar-mass progenitors of Type Ia supernovae at the faint end of the width-luminosity relation , 2017, 1706.01901.
[2] E. Bulbul,et al. Uniform Contribution of Supernova Explosions to the Chemical Enrichment of Abell 3112 out to R200 , 2016, 1609.03581.
[3] Ryuichi Fujimoto,et al. The Astro-H high resolution soft x-ray spectrometer , 2016, Astronomical Telescopes + Instrumentation.
[4] J. Kaastra,et al. Origin of central abundances in the hot intra-cluster medium - II. Chemical enrichment and supernova yield models , 2016, 1608.03888.
[5] J. W. den Herder,et al. Ground calibration of the Astro-H (Hitomi) soft x-ray spectrometer , 2016, Astronomical Telescopes + Instrumentation.
[6] Matteo Guainazzi,et al. In-flight verification of the calibration and performance of the ASTRO-H (Hitomi) Soft X-Ray Spectrometer , 2016, Astronomical Telescopes + Instrumentation.
[7] Ryuichi Fujimoto,et al. In-flight performance of the Soft X-ray Spectrometer detector system on Astro-H , 2016, Astronomical Telescopes + Instrumentation.
[8] Hideyuki Mori,et al. First peek of ASTRO-H Soft X-ray Telescope (SXT) in-orbit performance , 2016, Astronomical Telescopes + Instrumentation.
[9] Matteo Guainazzi,et al. The quiescent intracluster medium in the core of the Perseus cluster , 2016, Nature.
[10] J. Kaastra,et al. Origin of central abundances in the hot intra-cluster medium - I. Individual and average abundance ratios from XMM-Newton EPIC , 2016, 1606.01165.
[11] Makoto Sawada,et al. Astro-H data analysis, processing and archive , 2016, Astronomical Telescopes + Instrumentation.
[12] Brian J. Williams,et al. A CHANDRASEKHAR MASS PROGENITOR FOR THE TYPE Ia SUPERNOVA REMNANT 3C 397 FROM THE ENHANCED ABUNDANCES OF NICKEL AND MANGANESE , 2015, 1502.04255.
[13] R. Scalzo,et al. The ejected mass distribution of Type Ia supernovae: a significant rate of non-Chandrasekhar-mass progenitors , 2014, 1408.6601.
[14] J. Kollmeier,et al. CALCIUM-RICH GAP TRANSIENTS: SOLVING THE CALCIUM CONUNDRUM IN THE INTRACLUSTER MEDIUM , 2013, 1401.7017.
[15] S. Allen,et al. A uniform metal distribution in the intergalactic medium of the Perseus cluster of galaxies , 2013, Nature.
[16] F. Roepke,et al. Solar abundance of manganese: a case for near Chandrasekhar-mass Type Ia supernova progenitors , 2013, 1309.2397.
[17] K. Nomoto,et al. Nucleosynthesis in Stars and the Chemical Enrichment of Galaxies , 2013 .
[18] W. Hillebrandt,et al. Three-dimensional pure deflagration models with nucleosynthesis and synthetic observables for type ia supernovae , 2013, 1308.3257.
[19] R. Sunyaev,et al. Resonant scattering in the Perseus Cluster: spectral model for constraining gas motions with Astro-H , 2013, 1308.1956.
[20] G. Graves,et al. EARLY-TYPE GALAXY ARCHEOLOGY: AGES, ABUNDANCE RATIOS, AND EFFECTIVE TEMPERATURES FROM FULL-SPECTRUM FITTING , 2013, 1303.6629.
[21] Kosuke Sato,et al. METAL-MASS-TO-LIGHT RATIOS OF THE PERSEUS CLUSTER OUT TO THE VIRIAL RADIUS , 2013, 1301.0655.
[22] Stuart A. Sim,et al. Three-dimensional delayed-detonation models with nucleosynthesis for Type Ia supernovae , 2012, 1211.3015.
[23] T. Shigeyama,et al. DIVERSITY OF TYPE Ia SUPERNOVAE IMPRINTED IN CHEMICAL ABUNDANCES , 2012, 1210.7829.
[24] R. K. Smith,et al. UPDATED ATOMIC DATA AND CALCULATIONS FOR X-RAY SPECTROSCOPY , 2012, 1207.0576.
[25] E. Bulbul,et al. A NEW METHOD TO CONSTRAIN SUPERNOVA FRACTIONS USING X-RAY OBSERVATIONS OF CLUSTERS OF GALAXIES , 2012, 1205.2706.
[26] E. Bravo,et al. Sensitivity study of explosive nucleosynthesis in type Ia supernovae: Modification of individual thermonuclear reaction rates , 2012, 1204.1981.
[27] W. Hillebrandt,et al. NORMAL TYPE Ia SUPERNOVAE FROM VIOLENT MERGERS OF WHITE DWARF BINARIES , 2012, 1201.5123.
[28] W. Hillebrandt,et al. TYPE Ia SUPERNOVAE AS SITES OF THE p-PROCESS: TWO-DIMENSIONAL MODELS COUPLED TO NUCLEOSYNTHESIS , 2011, 1106.0582.
[29] S. E. Woosley,et al. SUB-CHANDRASEKHAR MASS MODELS FOR SUPERNOVAE , 2010, 1010.5292.
[30] W. Hillebrandt,et al. DETONATIONS IN SUB-CHANDRASEKHAR-MASS C+O WHITE DWARFS , 2010, 1003.2917.
[31] J. Sollerman,et al. NEBULAR SPECTRA AND EXPLOSION ASYMMETRY OF TYPE Ia SUPERNOVAE , 2009, 0911.5484.
[32] K. Mitsuda,et al. X-RAY SPECTROSCOPY OF THE CORE OF THE PERSEUS CLUSTER WITH SUZAKU: ELEMENTAL ABUNDANCES IN THE INTRACLUSTER MEDIUM , 2009, 0909.5003.
[33] S. Molendi,et al. Metal abundances in the cool cores of galaxy clusters , 2009, 0909.1224.
[34] H. Gail,et al. Abundances of the elements in the solar system , 2009, 0901.1149.
[35] A. Finoguenov,et al. Chemical enrichment in the cluster of galaxies Hydra A , 2008, 0809.2613.
[36] N. Yamasaki,et al. Type Ia and II Supernovae Contributions to Metal Enrichment in the Intracluster Medium Observed with Suzaku , 2007, 0708.0263.
[37] A. Fabian,et al. A deeper X‐ray study of the core of the Perseus galaxy cluster: the power of sound waves and the distribution of metals and cosmic rays , 2007, 0705.2712.
[38] J. Kaastra,et al. Constraining supernova models using the hot gas in clusters of galaxies , 2007, astro-ph/0701553.
[39] W. B. Burton,et al. The Leiden/Argentine/Bonn (LAB) Survey of Galactic HI - Final data release of the combined LDS and IAR surveys with improved stray-radiation corrections , 2005, astro-ph/0504140.
[40] M. Reinecke,et al. Nucleosynthesis in multi-dimensional SN Ia explosions , 2004, astro-ph/0406281.
[41] S. Molendi,et al. Ni Abundance in the Core of the Perseus Cluster: An Answer to the Significance of Resonant Scattering , 2003, astro-ph/0309582.
[42] W. Forman,et al. XMM—Newton observations of the Perseus cluster — II. Evidence for gas motions in the core , 2003, astro-ph/0309427.
[43] A. Finoguenov,et al. X-ray evidence for spectroscopic diversity of type Ia supernovae: XMM observation of the elemental abundance pattern in M87 , 2001, astro-ph/0110516.
[44] K. Langanke,et al. Shell-model calculations of stellar weak interaction rates: II. Weak rates for nuclei in the mass range in supernovae environments , 2000, nucl-th/0001018.
[45] R. Dupke,et al. Constraints on Type Ia Supernova Models from X-Ray Spectra of Galaxy Clusters , 1999, astro-ph/9907343.
[46] I. Hook,et al. Measurements of Ω and Λ from 42 High-Redshift Supernovae , 1998, astro-ph/9812133.
[47] A. Riess,et al. Observational Evidence from Supernovae for an Accelerating Universe and a Cosmological Constant , 1998, astro-ph/9805201.
[48] A. G. Alexei,et al. OBSERVATIONAL EVIDENCE FROM SUPERNOVAE FOR AN ACCELERATING UNIVERSE AND A COSMOLOGICAL CONSTANT , 1998 .
[49] E. Pecontal,et al. Tiger observations of the low and high velocity components of NGC 1275 , 1997 .
[50] R. Mushotzky,et al. Measurement of the Elemental Abundances in Four Rich Clusters of Galaxies. II. The Initial Mass Function and Mass Loss in Elliptical Galaxies, Enrichment, and Energetics in the ICM , 1996 .
[51] S. Woosley,et al. Sub-Chandrasekhar mass models for Type IA supernovae , 1994 .
[52] R. Webbink. Double white dwarfs as progenitors of R Coronae Borealis stars and type I supernovae , 1984 .
[53] W. Cash,et al. Parameter estimation in astronomy through application of the likelihood ratio. [satellite data analysis techniques , 1979 .
[54] J. Whelan,et al. Binaries and Supernovae of Type I , 1973 .
[55] R. Mushotzky,et al. Measurement of the elemental abundances in four rich clusters of galaxies. I. Observations , 1996 .