636 research outputs found
Quantum phases of SrCu2(BO3)2 from high-pressure thermodynamics
We report heat capacity measurements of SrCu(BO) under high
pressure along with simulations of relevant quantum spin models and map out the
phase diagram of the material. We find a first-order quantum phase
transition between the low-pressure quantum dimer paramagnet and a phase with
signatures of a plaquette-singlet state below T = K. At higher pressures,
we observe a transition into a previously unknown antiferromagnetic state below
K. Our findings can be explained within the two-dimensional
Shastry-Sutherland quantum spin model supplemented by weak inter-layer
couplings. The possibility to tune SrCu(BO) between the
plaquette-singlet and antiferromagnetic states opens opportunities for
experimental tests of quantum field theories and lattice models involving
fractionalized excitations, emergent symmetries, and gauge fluctuations.Comment: 6 pages + 8 pages supplemental informatio
Correlation between intercalated magnetic layers and superconductivity in pressurized EuFe2(As0.81P0.19)2
We report comprehensive high pressure studies on correlation between
intercalated magnetic layers and superconductivity in EuFe2(As0.81P0.19)2
single crystal through in-situ high pressure resistance, specific heat, X-ray
diffraction and X-ray absorption measurements. We find that an unconfirmed
magnetic order of the intercalated layers coexists with superconductivity in a
narrow pressure range 0-0.5GPa, and then it converts to a ferromagnetic (FM)
order at pressure above 0.5 GPa, where its superconductivity is absent. The
obtained temperature-pressure phase diagram clearly demonstrates that the
unconfirmed magnetic order can emerge from the superconducting state. In stark
contrast, the superconductivity cannot develop from the FM state that is
evolved from the unconfirmed magnetic state. High pressure X-ray absorption
(XAS) measurements reveal that the pressure-induced enhancement of Eu's mean
valence plays an important role in suppressing the superconductivity and tuning
the transition from the unconfirmed magnetic state to a FM state. The unusual
interplay among valence state of Eu ions, magnetism and superconductivity under
pressure may shed new light on understanding the role of the intercalated
magnetic layers in Fe-based superconductors
Superconductivity in pressurized CeRhGe3 and related non-centrosymmetric compounds
We report the discovery of superconductivity in pressurized CeRhGe3, until
now the only remaining non-superconducting member of the isostructural family
of non-centrosymmetric heavy-fermion compounds CeTX3 (T = Co, Rh, Ir and X =
Si, Ge). Superconductivity appears in CeRhGe3 at a pressure of 19.6 GPa and the
transition temperature Tc reaches a maximum value of 1.3 K at 21.5 GPa. This
finding provides an opportunity to establish systematic correlations between
superconductivity and materials properties within this family. Though
ambient-pressure unit-cell volumes and critical pressures for superconductivity
vary substantially across the series, all family members reach a maximum Tcmax
at a common critical cell volume Vcrit, and Tcmax at Vcrit increases with
increasing spin-orbit coupling strength of the d-electrons. These correlations
show that substantial Kondo hybridization and spin-orbit coupling favor
superconductivity in this family, the latter reflecting the role of broken
centro-symmetry.Comment: 15 pages and 4 figure
Puzzle maker in SmB6: accompany-type valence fluctuation state
In recent years, the study on the Kondo insulator SmB6, a strongly correlated
electron material with decades-long puzzles, has become one of the most
attractive topics again because the discovery of the coexistence of its unusual
metallic surface state with an insulating bulk. Many efforts have been made in
understanding the corresponding physics behind in SmB6, but some puzzles on it,
being hotly debated and argued, has not been solved. In this article, based on
the latest progress in our high pressure studies and the accumulating results
reported by other groups on SmB6, we propose a notion named as accompany-type
valence fluctuation state, which possibly coexists with the Kondo ground state
of SmB6. The purpose of this article is to search a common starting point from
which most of the accumulated low-temperature phenomena observed by different
experimental investigations on SmB6 could be understood in a unified way.
Although this notion is only our personal understanding from a phenomenological
point of view and may be immature, anyway, we expect that this notion could
attract rigorous theoretical interpretations and further experimental
investigations, or stimulate better thinking on the physics in SmB6.Comment: 15 pages, 3 figures and 1 tabl
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