TY - JOUR
T1 - XRISM Constraints on Unidentified X-Ray Emission Lines, Including the 3.5keV Line, in the Stacked Spectrum of 10 Galaxy Clusters
AU - XRISM Collaboration
AU - Audard, Marc
AU - Awaki, Hisamitsu
AU - Ballhausen, Ralf
AU - Bamba, Aya
AU - Behar, Ehud
AU - Boissay-Malaquin, Rozenn
AU - Brenneman, Laura
AU - Brown, Gregory V.
AU - Corrales, Lia
AU - Costantini, Elisa
AU - Cumbee, Renata
AU - Trigo, Maria Diaz
AU - Done, Chris
AU - Dotani, Tadayasu
AU - Ebisawa, Ken
AU - Eckart, Megan E.
AU - Eckert, Dominique
AU - Eguchi, Satoshi
AU - Enoto, Teruaki
AU - Ezoe, Yuichiro
AU - Foster, Adam
AU - Fujimoto, Ryuichi
AU - Fujita, Yutaka
AU - Fukazawa, Yasushi
AU - Fukushima, Kotaro
AU - Furuzawa, Akihiro
AU - Gallo, Luigi
AU - García, Javier A.
AU - Gu, Liyi
AU - Guainazzi, Matteo
AU - Hagino, Kouichi
AU - Hamaguchi, Kenji
AU - Hatsukade, Isamu
AU - Hayashi, Katsuhiro
AU - Hayashi, Takayuki
AU - Hell, Natalie
AU - Hodges-Kluck, Edmund
AU - Hornschemeier, Ann
AU - Ichinohe, Yuto
AU - Ishi, Daiki
AU - Ishida, Manabu
AU - Ishikawa, Kumi
AU - Ishisaki, Yoshitaka
AU - Kaastra, Jelle
AU - Kallman, Timothy
AU - Kara, Erin
AU - Katsuda, Satoru
AU - Kanemaru, Yoshiaki
AU - Kelley, Richard
AU - Kilbourne, Caroline
N1 - Publisher Copyright:
© 2025. The Author(s). Published by the American Astronomical Society.
PY - 2025/11/20
Y1 - 2025/11/20
N2 - We stack 3.75 Ms of early XRISM Resolve observations of 10 galaxy clusters to search for unidentified spectral lines in the E = 2.5–15 keV band (rest frame), including the E = 3.5 keV line reported in earlier low spectral resolution studies of cluster samples. Such an emission line may originate from the decay of the sterile neutrino, a warm dark matter (DM) candidate. No unidentified lines are detected in our stacked cluster spectrum, with the 3σ upper limit on the ms ∼ 7.1 keV DM particle decay rate (which corresponds to an E = 3.55 keV emission line) of Γ ∼ 1.0 × 10−27 s−1. This upper limit is 3–4 times lower than the one derived by Hitomi Collaboration from the Perseus observation but still 5 times higher than the XMM-Newton detection reported by E. Bulbul et al. in the stacked cluster sample. XRISM Resolve, with its high spectral resolution but small field of view, may reach the sensitivity needed to test the XMM-Newton cluster sample detection by combining several years worth of future cluster observations.
AB - We stack 3.75 Ms of early XRISM Resolve observations of 10 galaxy clusters to search for unidentified spectral lines in the E = 2.5–15 keV band (rest frame), including the E = 3.5 keV line reported in earlier low spectral resolution studies of cluster samples. Such an emission line may originate from the decay of the sterile neutrino, a warm dark matter (DM) candidate. No unidentified lines are detected in our stacked cluster spectrum, with the 3σ upper limit on the ms ∼ 7.1 keV DM particle decay rate (which corresponds to an E = 3.55 keV emission line) of Γ ∼ 1.0 × 10−27 s−1. This upper limit is 3–4 times lower than the one derived by Hitomi Collaboration from the Perseus observation but still 5 times higher than the XMM-Newton detection reported by E. Bulbul et al. in the stacked cluster sample. XRISM Resolve, with its high spectral resolution but small field of view, may reach the sensitivity needed to test the XMM-Newton cluster sample detection by combining several years worth of future cluster observations.
UR - https://www.scopus.com/pages/publications/105034226853
UR - https://www.scopus.com/pages/publications/105034226853#tab=citedBy
U2 - 10.3847/2041-8213/ae17ad
DO - 10.3847/2041-8213/ae17ad
M3 - Article
AN - SCOPUS:105034226853
SN - 2041-8205
VL - 994
JO - Astrophysical Journal Letters
JF - Astrophysical Journal Letters
IS - 1
M1 - L28
ER -