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Sklenar, Joseph; Zhang, Yingjie; Jungfleisch, Matthias Benjamin; Kim, Youngseok; Xiao, Yiran; MacDougall, Gregory J.; Gilbert, Matthew J.; Hoffmann, Axel; Schiffer, Peter; Mason, Nadya (, Applied Physics Letters)
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Lee, Sangjun; Huang, Edwin W.; Johnson, Thomas A.; Guo, Xuefei; Husain, Ali A.; Mitrano, Matteo; Lu, Kannan; Zakrzewski, Alexander V.; de la Peña, Gilberto A.; Peng, Yingying; et al (, Proceedings of the National Academy of Sciences)Charge density waves (CDWs) have been observed in nearly all families of copper-oxide superconductors. But the behavior of these phases across different families has been perplexing. In La-based cuprates, the CDW wavevector is an increasing function of doping, exhibiting the so-called Yamada behavior, while in Y- and Bi-based materials the behavior is the opposite. Here, we report a combined resonant soft X-ray scattering (RSXS) and neutron scattering study of charge and spin density waves in isotopically enriched La 1.8 − x Eu 0.2 Sr x CuO 4 over a range of doping 0.07 ≤ x ≤ 0.20 . We find that the CDW amplitude is temperature independent and develops well above experimentally accessible temperatures. Further, the CDW wavevector shows a nonmonotonic temperature dependence, exhibiting Yamada behavior at low temperature with a sudden change occurring near the spin ordering temperature. We describe these observations using a Landau–Ginzburg theory for an incommensurate CDW in a metallic system with a finite charge compressibility and spin-CDW coupling. Extrapolating to high temperature, where the CDW amplitude is small and spin order is absent, our analysis predicts a decreasing wavevector with doping, similar to Y and Bi cuprates. Our study suggests that CDW order in all families of cuprates forms by a common mechanism.more » « less
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Chen, Angela Q.; Park, Moon Jip; Gill, Stephen T.; Xiao, Yiran; Reig-i-Plessis, Dalmau; MacDougall, Gregory J.; Gilbert, Matthew J.; Mason, Nadya (, Nature Communications)Abstract Unconventional superconductivity arising from the interplay between strong spin–orbit coupling and magnetism is an intensive area of research. One form of unconventional superconductivity arises when Cooper pairs subjected to a magnetic exchange coupling acquire a finite momentum. Here, we report on a signature of finite momentum Cooper pairing in the three-dimensional topological insulator Bi2Se3. We apply in-plane and out-of-plane magnetic fields to proximity-coupled Bi2Se3and find that the in-plane field creates a spatially oscillating superconducting order parameter in the junction as evidenced by the emergence of an anomalous Fraunhofer pattern. We describe how the anomalous Fraunhofer patterns evolve for different device parameters, and we use this to understand the microscopic origin of the oscillating order parameter. The agreement between the experimental data and simulations shows that the finite momentum pairing originates from the coexistence of the Zeeman effect and Aharonov–Bohm flux.more » « less
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