TY - JOUR
T1 - Normal state specific heat in the cuprate superconductors La2-xSrxCuO4 and Bi2+ySr2-x-yLaxCuO6+δ near the critical point of the pseudogap phase
AU - Girod, C.
AU - Leboeuf, D.
AU - Demuer, A.
AU - Seyfarth, G.
AU - Imajo, S.
AU - Kindo, K.
AU - Kohama, Y.
AU - Lizaire, M.
AU - Legros, A.
AU - Gourgout, A.
AU - Takagi, H.
AU - Kurosawa, T.
AU - Oda, M.
AU - Momono, N.
AU - Chang, J.
AU - Ono, S.
AU - Zheng, G. Q.
AU - Marcenat, C.
AU - Taillefer, L.
AU - Klein, T.
N1 - Funding Information:
The work in Grenoble was supported by the Laboratoire d'excellence LANEF (Grant No. ANR-10-LABX-51-01) and was performed at the LNCMI, a member of the European Magnetic Field Laboratory (EMFL). Work at the LNCMI was supported by the French Agence Nationale de la Recherche (ANR) (Contract No. ANR-19-CE30- 0019-01). L.T. acknowledges support from the Canadian Institute for Advanced Research (CIFAR) as a CIFAR Fellow and funding from the Institut Quantique, the Natural Sciences and Engineering Research Council of Canada (PIN:123817), the Fonds de Recherche du QuebecNature et Technologies (FRQNT), the Canada Foundation for Innovation (CFI), and a Canada Research Chair. This research was undertaken thanks, in part, to funding from the Canada First Research Excellence Fund and the Gordon and Betty Moore Foundation's EPiQS Initiative (Grant No. GBMF5306 to L.T.). J.C. acknowledge support from the Swiss National Science Foundation. We thank J.-M.S. Tramblay and C.M. Varma for fruitful discussions.
Publisher Copyright:
© 2021 American Physical Society.
PY - 2021/6/1
Y1 - 2021/6/1
N2 - The specific heat C of the cuprate superconductors La2-xSrxCuO4 and Bi2+ySr2-x-yLaxCuO6+δ was measured at low temperatures (down to 0.5 K) for dopings p close to p∗, the critical doping for the onset of the pseudogap phase. A magnetic field up to 35 T was applied to suppress superconductivity, giving direct access to the normal state at low temperatures, and enabling a determination of Ce, the electronic contribution to the normal-state specific heat at T→0. In La2-xSrxCuO4 at x=p=0.22, 0.24 and 0.25, Ce/T=15to16mJmol-1K-2 at T=2K, values that are twice as large as those measured at higher doping (p>0.3) and lower doping (p<0.15). This confirms the presence of a broad peak in the doping dependence of Ce at p∗≃0.19 as previously reported for samples in which superconductivity was destroyed by Zn impurities. Moreover, at those three dopings, we find a logarithmic growth as T→0 such that Ce/T∼Bln(T0/T). The peak versus p and the logarithmic dependence versus T are the two typical thermodynamic signatures of quantum criticality. In the very different cuprate Bi2+ySr2-x-yLaxCuO6+δ, we again find that Ce/T∼Bln(T0/T) at p≃p∗, strong evidence that this ln(1/T) dependence of the electronic specific heat - first discovered in the cuprates La1.8-xEu0.2SrxCuO4 and La1.6-xNd0.4SrxCuO4 - is a universal property of the pseudogap critical point.
AB - The specific heat C of the cuprate superconductors La2-xSrxCuO4 and Bi2+ySr2-x-yLaxCuO6+δ was measured at low temperatures (down to 0.5 K) for dopings p close to p∗, the critical doping for the onset of the pseudogap phase. A magnetic field up to 35 T was applied to suppress superconductivity, giving direct access to the normal state at low temperatures, and enabling a determination of Ce, the electronic contribution to the normal-state specific heat at T→0. In La2-xSrxCuO4 at x=p=0.22, 0.24 and 0.25, Ce/T=15to16mJmol-1K-2 at T=2K, values that are twice as large as those measured at higher doping (p>0.3) and lower doping (p<0.15). This confirms the presence of a broad peak in the doping dependence of Ce at p∗≃0.19 as previously reported for samples in which superconductivity was destroyed by Zn impurities. Moreover, at those three dopings, we find a logarithmic growth as T→0 such that Ce/T∼Bln(T0/T). The peak versus p and the logarithmic dependence versus T are the two typical thermodynamic signatures of quantum criticality. In the very different cuprate Bi2+ySr2-x-yLaxCuO6+δ, we again find that Ce/T∼Bln(T0/T) at p≃p∗, strong evidence that this ln(1/T) dependence of the electronic specific heat - first discovered in the cuprates La1.8-xEu0.2SrxCuO4 and La1.6-xNd0.4SrxCuO4 - is a universal property of the pseudogap critical point.
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U2 - 10.1103/PhysRevB.103.214506
DO - 10.1103/PhysRevB.103.214506
M3 - Article
AN - SCOPUS:85107823960
SN - 2469-9950
VL - 103
JO - Physical Review B
JF - Physical Review B
IS - 21
M1 - 214506
ER -