TY - JOUR
T1 - Field-induced superconducting phase of FeSe in the BCS-BEC cross-over
AU - Kasahara, Shigeru
AU - Watashige, Tatsuya
AU - Hanaguri, Tetsuo
AU - Kohsaka, Yuhki
AU - Yamashita, Takuya
AU - Shimoyama, Yusuke
AU - Mizukami, Yuta
AU - Endo, Ryota
AU - Ikeda, Hiroaki
AU - Aoyama, Kazushi
AU - Terashima, Taichi
AU - Uji, Shinya
AU - Wolf, Thomas
AU - Von Löhneysen, Hilbert
AU - Shibauchi, Takasada
AU - Matsuda, Yuji
PY - 2014/11/18
Y1 - 2014/11/18
N2 - Fermi systems in the cross-over regime between weakly coupled Bardeen-Cooper-Schrieffer (BCS) and strongly coupled Bose-Einsteincondensate (BEC) limits are among the most fascinating objects to study the behavior of an assembly of strongly interacting particles. The physics of this cross-over has been of considerable interest both in the fields of condensed matter and ultracold atoms. One of the most challenging issues in this regime is the effect of large spin imbalance on a Fermi system under magnetic fields. Although several exotic physical properties have been predicted theoretically, the experimental realization of such an unusual superconducting state has not been achieved so far. Here we show that pure single crystals of superconducting FeSe offer the possibility to enter the previously unexplored realm where the three energies, Fermi energy εF, superconducting gap Δ, and Zeeman energy, become comparable. Through the superfluid response, transport, thermoelectric response, and spectroscopic-imaging scanning tunneling microscopy, we demonstrate that eF of FeSe is extremely small, with the ratio Δ=εF ∼1(∼0:3) in the electron (hole) band. Moreover, thermal-conductivity measurements give evidence of a distinct phase line below the upper critical field, where the Zeeman energy becomes comparable to εF and Δ. The observation of this field-induced phase provides insights into previously poorly understood aspects of the highly spin-polarized Fermi liquid in the BCS-BEC cross-over regime.
AB - Fermi systems in the cross-over regime between weakly coupled Bardeen-Cooper-Schrieffer (BCS) and strongly coupled Bose-Einsteincondensate (BEC) limits are among the most fascinating objects to study the behavior of an assembly of strongly interacting particles. The physics of this cross-over has been of considerable interest both in the fields of condensed matter and ultracold atoms. One of the most challenging issues in this regime is the effect of large spin imbalance on a Fermi system under magnetic fields. Although several exotic physical properties have been predicted theoretically, the experimental realization of such an unusual superconducting state has not been achieved so far. Here we show that pure single crystals of superconducting FeSe offer the possibility to enter the previously unexplored realm where the three energies, Fermi energy εF, superconducting gap Δ, and Zeeman energy, become comparable. Through the superfluid response, transport, thermoelectric response, and spectroscopic-imaging scanning tunneling microscopy, we demonstrate that eF of FeSe is extremely small, with the ratio Δ=εF ∼1(∼0:3) in the electron (hole) band. Moreover, thermal-conductivity measurements give evidence of a distinct phase line below the upper critical field, where the Zeeman energy becomes comparable to εF and Δ. The observation of this field-induced phase provides insights into previously poorly understood aspects of the highly spin-polarized Fermi liquid in the BCS-BEC cross-over regime.
KW - BCS-BEC cross-over
KW - Exotic superconducting phase
KW - Fermi energy
KW - Iron-based superconductors
KW - Quasiparticle interference
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U2 - 10.1073/pnas.1413477111
DO - 10.1073/pnas.1413477111
M3 - Article
AN - SCOPUS:84911893758
SN - 0027-8424
VL - 111
SP - 16309
EP - 16313
JO - Proceedings of the National Academy of Sciences of the United States of America
JF - Proceedings of the National Academy of Sciences of the United States of America
IS - 46
ER -