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Time-Resolved Quasiparticle Dynamics in the Spin-Density-Wave State

Elbert E. M. Chia, Jian-Xin Zhu, H. J. Lee, Namjung Hur, N. O. Moreno, R. D. Averitt, J. L. Sarrao, A. J. Taylor

cond-mat.str-elarXiv:cond-mat/0610353

Abstract

Time-resolved photoinduced reflectivity is measured in the spin-density-wave (SDW) phase using itinerant antiferromagnets UMGa5 (M=Ni, Pt). For UNiGa5 [TN=85 K, Q=(π,π,π)], the relaxation time τ shows a sharp increase at TN consistent with the opening of a SDW gap. For UPtGa5 [TN=26 K, Q=(0,0,π)], no change in τ is observed at TN or at the lowest temperatures. We attribute this to the absence of the SDW gap at the Fermi level, due to a different modulation vector Q, which leads to a gapless quasiparticle spectrum. Our results challenge the conventional wisdom that a SDW phase necessarily implies a SDW gap at the Fermi level.

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