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That this is a bulk superconducting effect is corroborated by the magnetic field-dependent suppression of the Knight shift (a measure of the density of states at EF) seen below Tc of Bi2201 in nuclear magnetic resonance (40). The Knight shift was found to drop sharply at T *, exhibiting a similar temperature dependence as those shown in Fig. 3.
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We thank I. Vishik, W.-S. Lee, L. Taillefer, and M. Greven for helpful discussions, Y. Li and G. Yu for experimental assistance on SQUID, and J.-H. Chu on resistivity measurements. R.-H.H. thanks the SGF for financial support. This work at the Stanford Institute for Materials and Energy Sciences, the Stanford Synchrotron Radiation Lightsource, and the Advanced Light Source is supported by the Department of Energy, Office of Basic Energy Sciences under contracts DE-AC02-76SF00515 and DE-AC02-05CH11231.
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