Curriculum Vitaes

Shiro Sakai

  (酒井 志朗)

Profile Information

Affiliation
Associate Professor, Faculty of Science and Technology Department of Engineering and Applied Sciences, Sophia University

Researcher number
80506733
ORCID ID
 https://orcid.org/0000-0001-5495-3884
J-GLOBAL ID
202501006436463317
researchmap Member ID
R000083037

Papers

 74
  • Motoharu Kitatani, Yusuke Nomura, Shiro Sakai, Ryotaro Arita
    Physical Review B, Aug 7, 2026  
  • Junmo Jeon, Shiro Sakai
    Physical Review B, 113 L241113, Jun 17, 2026  Peer-reviewed
  • Junhyeok Jeong, Yamato Enomoto, Yoshimitsu Kohama, Tomotaka Nakayama, Kotaro Ando, Kifu Kurokawa, Soonsang Huh, Zhuo Yang, Toshihiro Nomura, Matthew D. Watson, Timur K. Kim, Cephise Cacho, Chun Lin, Makoto Hashimoto, Donghui Lu, Shiro Sakai, Takami Tohyama, Kazuyasu Tokiwa, Takeshi Kondo
    Nature Communications, 17(1), Jun 2, 2026  
    Abstract Fermi arcs observed in underdoped cuprates have sparked debate over whether they represent segments of a large Fermi surface or small Fermi pockets. This ambiguity has long hindered their classification as either the conventional Bardeen-Cooper-Schrieffer (BCS) regime or the strongly coupled Bose-Einstein condensation (BEC) crossover limit. Here, using angle-resolved photoemission spectroscopy and quantum oscillations, we demonstrate the coexistence of a small Fermi pocket and a large superconducting gap in the clean inner CuO 2 layers of the four-layer cuprate Ba 2 Ca 3 Cu 4 O 8 (F,O) 2 . This coexistence constitutes a hallmark of the BCS-BEC crossover and has remained elusive for decades. Despite the presence of antiferromagnetic (AF) order, the superconducting gap in the small pocket is remarkably large, yielding a gap-to-Fermi energy ratio (Δ pocket / ε F  ~ 0.6) and a critical-to-Fermi temperature ratio ( T c / T F  ~ 0.13) that reach the theoretical upper bound for two-dimensional superconductivity. Unexpectedly, this BCS-BEC crossover emerges not as the carrier density decreases but as it increases, abruptly within a narrow doping range of less than 1%. These results provide a long-sought microscopic foundation for the d -wave pairing mechanism in doped AF-Mott insulators.
  • Shiro Sakai, Youhei Yamaji, Fumihiro Imoto, Tsuyoshi Tamegai, Adam Kaminski, Takeshi Kondo, Yuhki Kohsaka, Tetsuo Hanaguri, Masatoshi Imada
    Physical Review X, Feb 4, 2026  Peer-reviewed
  • Junmo Jeon, Harukuni Ikeda, Shiro Sakai
    Physical Review B, 113 L020201, Jan 15, 2026  Peer-reviewed

Misc.

 15

Books and Other Publications

 1

Presentations

 2

Professional Memberships

 1

Works

 1

Research Projects

 11