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Understanding superconductivity requires detailed knowledge of the normal electronic state from which it emerges.
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2018
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2018
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2016
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2016
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2016
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2017
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2017
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2018
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2018
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2018
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P. Wiecki, K. Rana, A. E. Böhmer, Y. Lee, S. L. Bud’ko, P. C. Canfield, and Y. Furukawa, “Persistent correlation between superconductivity and antiferromagnetic fluctuations near a nematic quantum critical point in FeSe 1 − x S x {\mathrm{FeSe}}_{1-x}{\mathrm{S}}_{x} ,” Phys. Rev. B 98
2018
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2018
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A. I. Coldea, S. F. Blake, S. Kasahara, A. A. Haghighirad, M. D. Watson, W. Knafo, E. S. Choi, A. McCollam, P. Reiss, T. Yamashita, M. Bruma, S. Speller, Y. Matsuda, T. Wolf, T. Shibauchi, and A. J. Schofield, “Evolution of the low-temperature Fermi surface of superconducting FeSe 1-x
2019
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2019
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M Bristow, P. Reiss, A. A. Haghighirad, and A. I. Coldea, in preparation (2019)
2019
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2019
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2019
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S. Licciardello, J. Buhot, J. Lu, J. Ayres, S. Kasahara, Y. Matsuda, T. Shibauchi, and N. E. Hussey, “Electrical resistivity across a nematic quantum critical point,” Nature (2019), 10.1038/s41586-019-0923-y
2019
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