BCS-BEC crossover driven by small Fermi pockets of a high-Tc cuprate superconductor

J Junhyeok Jeong Y Yamato Enomoto Y Yoshimitsu Kohama T Tomotaka Nakayama K Kotaro Ando K Kifu Kurokawa S Soonsang Huh Z Zhuo Yang (Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry) T Toshihiro Nomura (Department of Physics, Faculty of Science) M Matthew D. Watson (Laboratory of Protein Conformation and Dynamics, Biochemistry and Biophysics Center, National Heart, Lung, and Blood Institute) T Timur K. Kim (Diamond Light Source) C Cephise Cacho C Chun Lin M Makoto Hashimoto (Stanford Synchrotron Radiation Lightsource) D Donghui Lu (Stanford Synchrotron Radiation Lightsource) S Shiro Sakai (Center for Emergent Matter Science) T Takami Tohyama K Kazuyasu Tokiwa T Takeshi Kondo (Institute for Solid State Physics)

Abstract

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.

Article Details

Volume / Issue Vol. 17, Issue 1
Published June 02, 2026
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (19)

J

Junhyeok Jeong

Y

Yamato Enomoto

Y

Yoshimitsu Kohama

T

Tomotaka Nakayama

K

Kotaro Ando

K

Kifu Kurokawa

S

Soonsang Huh

Z

Zhuo Yang

Frontiers Science Center for New Organic Matter, Key Laboratory of Advanced Energy Materials Chemistry (Ministry of Education), State Key Laboratory of Advanced Chemical Power Sources, College of Chemistry

T

Toshihiro Nomura

Department of Physics, Faculty of Science

M

Matthew D. Watson

Laboratory of Protein Conformation and Dynamics, Biochemistry and Biophysics Center, National Heart, Lung, and Blood Institute

T

Timur K. Kim

Diamond Light Source

C

Cephise Cacho

C

Chun Lin

M

Makoto Hashimoto

Stanford Synchrotron Radiation Lightsource

D

Donghui Lu

Stanford Synchrotron Radiation Lightsource

S

Shiro Sakai

Center for Emergent Matter Science

T

Takami Tohyama

K

Kazuyasu Tokiwa

T

Takeshi Kondo

Institute for Solid State Physics