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Toru Shigeoka

Publications and source records attributed to Toru Shigeoka.

2 recordsLinked to original sources

Nearly Isotropic Quantum-Critical Transport in Single-Crystal CeNiC2

Pressure-induced superconductivity and $T$-linear resistivity have been reported in polycrystalline CeNiC$_2$, but orientational averaging has left the directional character of the critical scattering unresolved. We report pressure-dependent resistivity of high-quality single crystals for current along each crystallographic axis. These crystals have substantially lower residual resistivity and a slightly higher maximum onset $T_c$ than the polycrystalline sample, placing superconductivity in a cleaner transport regime. Near $P_c \approx 9.5-10$ GPa, the normal-state resistivity becomes nearly $T$-linear along every axis, the fitted residual resistivity is strongly enhanced, and superconductivity forms a narrow dome. For $I \parallel b$, the $T$-linear normal state remains nearly unchanged in magnetic fields up to 9 T applied along $a$ and $c$; the upper critical field is large and only moderately anisotropic. The common evolution along all three axes establishes a nearly isotropic quantum-critical transport regime, inconsistent with a simple low-dimensional spin-fluctuation picture and implicates valence fluctuations as the leading source of critical scattering associated with the superconducting dome.

cond-mat.supr-con

Investigation of the atomic coordinates of CeNiC$_2$ under pressure: switching of the Ce-Ce first nearest neighbor direction

When pressurized, the heavy fermion compound CeNiC$_2$ reveals a rich electronic phase diagram and shows unconventional superconductivity with a transition temperature $T_c$ $\sim$ 3.7 K, the highest among Ce-based heavy fermion superconductors [S. Katano et al., Phys. Rev. B. 99, 100501(R) (2019)]. Understanding of this appearance of superconductivity in the vicinity of magnetic quantum critical point is still lacking. Given that physical properties of CeNiC$_2$ are sensitive to subtle changes in the interatomic distances, information on atomic coordinates may offer essential insights into the local lattice arrangements, thus the mechanisms behind the exotic phases and phase transitions. However, extraction of precise information on the atomic coordinates under pressure remains a challenge. To find a correlation between the local lattice environments and exotic physical properties in CeNiC$_2$, we investigate its crystal structure from ambient pressure to 18.6 GPa via single crystal X-ray diffraction. The pressure dependence of lattice parameters reveals anisotropic linear compressibility, $|κ|$, following the relationship $|κ_{a}|$ (3.70$\times$10$^{-3}$ GPa$^{-1}$) $>$ $|κ_{c}|$ (1.97$\times$10$^{-3}$ GPa$^{-1}$) $>$ $|κ_{b}|$ (1.39$\times$10$^{-3}$ GPa$^{-1}$), and a large bulk modulus, B$_0$ $\sim$ 134 GPa. Although the atomic coordinates between Ce and Ni remain unchanged under applied pressure, direction of the first nearest and the second nearest neighbors between both the Ce-Ce and Ni-Ni atoms switch $\sim$ 7 GPa. Notably, this is the same pressure that antiferromagnetic ordering temperature reaches maximum in the pressure temperature phase diagram of CeNiC$_2$. Our results suggest that the direction of nearest neighbors interchange might play a key role in the suppression of magnetic order and the enhancement of Kondo effect.

cond-mat.str-el