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Initial-state-independent equilibration at the breakdown of the eigenstate thermalization hypothesis

机译:本征态热化假设分解时与初始状态无关的平衡

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This work aims at understanding the interplay between the eigenstate thermalization hypothesis (ETH), initial state independent equilibration, and quantum chaos in systems that do not have a direct classical counterpart. It is based on numerical investigations of asymmetric Heisenberg spin ladders with varied interaction strengths between the legs, i.e., along the rungs. The relaxation of the energy difference between the legs is investigated. Two different parameters, both intended to quantify the degree of accordance with the ETH, are computed. Both indicate violation of the ETH at large interaction strengths but at different thresholds. Indeed, the energy difference is found not to relax independently of its initial value above some critical interaction strength, which coincides with one of the thresholds. At the same point the level statistics shift from Poisson-type to Wigner-type. Hence, the system may be considered to become integrable again in the strong interaction limit.
机译:这项工作旨在理解本征态热化假设(ETH),独立于初始状态的平衡以及在没有直接经典对等物的系统中的量子混沌之间的相互作用。它是基于对不对称的海森堡旋转梯进行数值研究的,该梯在两腿之间(即沿梯级)具有不同的相互作用强度。研究了两腿之间能量差的松弛。计算了两个不同的参数,都旨在量化与ETH的符合程度。两者都表明在较大的交互强度下但在不同的阈值下违反了ETH。实际上,发现能量差不会独立于其高于某个临界相互作用强度的初始值而松弛,这与阈值之一一致。同时,层次统计从泊松型转变为维格纳型。因此,可以认为系统在强大的交互作用限制内再次变得可集成。

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