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    High-pressure study of the basal-plane anisotropy of the upper critical field of the topological superconductor SrxBi2Se3

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    We report a high-pressure transport study of the upper-critical field, Bc2(T)B_{c2}(T), of the topological superconductor Sr0.15_{0.15}Bi2_2Se3_3 (Tc=3.0T_c = 3.0 K). Bc2(T)B_{c2}(T) was measured for magnetic fields directed along two orthogonal directions, aa and a∗a^*, in the trigonal basal plane. While superconductivity is rapidly suppressed at the critical pressure pc∼3.5p_c \sim 3.5 GPa, the pronounced two-fold basal-plane anisotropy Bc2a/Bc2a∗=3.2B_{c2}^a/B_{c2}^{a^*} = 3.2 at T=0.3T=0.3 K, recently reported at ambient pressure (Pan et al., 2016), is reinforced and attains a value of ∼5\sim 5 at the highest pressure (2.2 GPa). The data reveal that the unconventional superconducting state with broken rotational symmetry is robust under pressure

    Microscopic origin of local moments in a zinc-doped high-TcT_{c} superconductor

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    The formation of a local moment around a zinc impurity in the high-TcT_{c} cuprate superconductors is studied within the framework of the bosonic resonating-valence-bond (RVB) description of the t−Jt-J model. A topological origin of the local moment has been shown based on the phase string effect in the bosonic RVB theory. It is found that such an S=1/2S=1/2 moment distributes near the zinc in a form of staggered magnetic moments at the copper sites. The corresponding magnetic properties, including NMR spin relaxation rate, uniform spin susceptibility, and dynamic spin susceptibility, etc., calculated based on the theory, are consistent with the experimental measurements. Our work suggests that the zinc substitution in the cuprates provide an important experimental evidence for the RVB nature of local physics in the original (zinc free) state.Comment: The topological reason of local moment formation is given. One figure is adde
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