TY - JOUR
T1 - Structured ionized winds shooting out from a quasar at relativistic speeds
AU - XRISM Collaboration
AU - Xu, Yerong
AU - Tombesi, Francesco
AU - Sato, Riki
AU - Reeves, James
AU - Mizukawa, Ryuki
AU - Miyamoto, Aiko
AU - Luminari, Alfredo
AU - Gonzalez, Adam
AU - Fukumura, Keigo
AU - Condò, Pierpaolo
AU - Braito, Valentina
AU - Zhuravleva, Irina
AU - Yukita, Mihoko
AU - Yoshida, Tessei
AU - Yoneyama, Tomokage
AU - Yaqoob, Tahir
AU - Yamauchi, Shigeo
AU - Yamauchi, Makoto
AU - Yamasaki, Noriko
AU - Yamaoka, Kazutaka
AU - Yamaguchi, Hiroya
AU - Yamada, Shinya
AU - Yamada, Satoshi
AU - Williams, Brian J.
AU - Watanabe, Shin
AU - Vink, Jacco
AU - Uno, Shinichiro
AU - Ueda, Yoshihiro
AU - Uchiyama, Hideki
AU - Uchida, Yuusuke
AU - Uchida, Nagomi
AU - Uchida, Hiroyuki
AU - Tsuru, Takeshi G.
AU - Tsunemi, Hiroshi
AU - Tsujimoto, Masahiro
AU - Tsuboi, Yohko
AU - Terashima, Yuichi
AU - Terada, Yukikatsu
AU - Tashiro, Makoto
AU - Tanimoto, Atsushi
AU - Tanaka, Takaaki
AU - Tamura, Keisuke
AU - Tamagawa, Toru
AU - Takeo, Mai
AU - Takahashi, Hiromitsu
AU - Szymkowiak, Andrew
AU - Suzuki, Hiromasa
AU - Smith, Randall
AU - Simionescu, Aurora
AU - Furuzawa, Akihiro
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Nature Limited 2025.
PY - 2025/5/29
Y1 - 2025/5/29
N2 - Evidence indicates that supermassive black holes (SMBHs) exist at the centres of most galaxies. Their mass correlates with the galactic bulge mass1, suggesting a coevolution with their host galaxies2, most likely through powerful winds3. X-ray observations have detected highly ionized winds outflowing at sub-relativistic speeds from the accretion disks around SMBHs4,5. However, the limited spectral resolution of present X-ray instruments has left the physical structure and location of the winds poorly understood, hindering accurate estimates of their kinetic power6,7. Here the first X-Ray Imaging and Spectroscopy Mission (XRISM) observation of the luminous quasar PDS 456 is reported. The high-resolution spectrometer Resolve aboard XRISM enabled the discovery of five discrete velocity components outflowing at 20–30% of the speed of light. This demonstrates that the wind structure is highly inhomogeneous, which probably consists of up to a million clumps. The mass outflow rate is estimated to be 60–300 solar masses per year, with the wind kinetic power exceeding the Eddington luminosity limit. Compared with the galaxy-scale outflows, the kinetic power is more than three orders of magnitude larger, whereas the momentum flux is ten times larger. These estimates disfavour both energy-driven and momentum-driven outflow models. This suggests that such wind activity occurs in less than 10% of the quasar phase and/or that its energy/momentum is not efficiently transferred to the galaxy-scale outflows owing to the clumpiness of the wind and the interstellar medium.
AB - Evidence indicates that supermassive black holes (SMBHs) exist at the centres of most galaxies. Their mass correlates with the galactic bulge mass1, suggesting a coevolution with their host galaxies2, most likely through powerful winds3. X-ray observations have detected highly ionized winds outflowing at sub-relativistic speeds from the accretion disks around SMBHs4,5. However, the limited spectral resolution of present X-ray instruments has left the physical structure and location of the winds poorly understood, hindering accurate estimates of their kinetic power6,7. Here the first X-Ray Imaging and Spectroscopy Mission (XRISM) observation of the luminous quasar PDS 456 is reported. The high-resolution spectrometer Resolve aboard XRISM enabled the discovery of five discrete velocity components outflowing at 20–30% of the speed of light. This demonstrates that the wind structure is highly inhomogeneous, which probably consists of up to a million clumps. The mass outflow rate is estimated to be 60–300 solar masses per year, with the wind kinetic power exceeding the Eddington luminosity limit. Compared with the galaxy-scale outflows, the kinetic power is more than three orders of magnitude larger, whereas the momentum flux is ten times larger. These estimates disfavour both energy-driven and momentum-driven outflow models. This suggests that such wind activity occurs in less than 10% of the quasar phase and/or that its energy/momentum is not efficiently transferred to the galaxy-scale outflows owing to the clumpiness of the wind and the interstellar medium.
UR - https://www.scopus.com/pages/publications/105007176578
UR - https://www.scopus.com/pages/publications/105007176578#tab=citedBy
U2 - 10.1038/s41586-025-08968-2
DO - 10.1038/s41586-025-08968-2
M3 - Article
C2 - 40369083
AN - SCOPUS:105007176578
SN - 0028-0836
VL - 641
SP - 1132
EP - 1136
JO - Nature
JF - Nature
IS - 8065
ER -