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Dy2Ti2O7自旋冰中的量子-经典折返弛豫交叉

Quantum-classical reentrant relaxation crossover in Dy2Ti2O7 spin ice.

作者信息

Snyder J, Ueland B G, Slusky J S, Karunadasa H, Cava R J, Mizel Ari, Schiffer P

机构信息

Department of Physics, Pennsylvania State University, University Park, Pennsylvania 16802, USA.

出版信息

Phys Rev Lett. 2003 Sep 5;91(10):107201. doi: 10.1103/PhysRevLett.91.107201.

Abstract

We have studied spin relaxation in the spin ice compound Dy2Ti2O7 through measurements of the ac magnetic susceptibility. While the characteristic spin-relaxation time (tau) is thermally activated at high temperatures, it becomes almost temperature independent below T(cross) approximately 13 K. This behavior, combined with nonmonotonic magnetic field dependence of tau, indicates that quantum tunneling dominates the relaxational process below that temperature. As the low-entropy spin ice state develops below T(ice) approximately 4 K, tau increases sharply with decreasing temperature, suggesting the emergence of a collective degree of freedom for which thermal relaxation processes again become important as the spins become strongly correlated.

摘要

我们通过测量交流磁化率研究了自旋冰化合物Dy2Ti2O7中的自旋弛豫。虽然特征自旋弛豫时间(tau)在高温下是热激活的,但在约13K的T(交叉)以下它几乎与温度无关。这种行为,再加上tau的非单调磁场依赖性,表明在该温度以下量子隧穿主导了弛豫过程。当在约4K的T(冰)以下低熵自旋冰态形成时,tau随着温度降低而急剧增加,这表明出现了一种集体自由度,随着自旋变得高度相关,热弛豫过程再次变得重要。

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