奥布里跃迁中的量子效应

P. Bonetti, A. Rucci, M. Chiofalo, V. Vuletić
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引用次数: 2

摘要

滑动阶段和固定阶段之间的Aubry过渡是由两个不相称的长度尺度之间的竞争驱动的,代表了一种适用于各种微观不同系统的范例。尽管之前有理论研究,但量子效应在多大程度上改变了跃迁,或者在实验上是可观察到的,仍然是一个悬而未决的问题。最近,一种可能达到量子状态的实验平台以被捕获的激光冷却离子的形式出现,这些离子受到周期性光势的影响[a]。杨建军,刘建军,刘建军,等。中国科学:自然科学,2016,37(6)。利用路径积分蒙特卡罗(PIMC)模拟方法,分析了量子隧道效应对该系统从滑动到钉住转变的影响,并从不相关和势强的角度确定了相图。我们提出了量子奥布里跃迁的新特征,这些特征可以抵抗热效应和有限尺寸效应,并且可以在未来的实验中观察到。
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Quantum effects in the Aubry transition
The Aubry transition between sliding and pinned phases, driven by the competition between two incommensurate length scales, represents a paradigm that is applicable to a large variety of microscopically distinct systems. Despite previous theoretical studies, it remains an open question to what extent quantum effects modify the transition, or are experimentally observable. An experimental platform that can potentially reach the quantum regime has recently become available in the form of trapped laser-cooled ions subject to a periodic optical potential [A. Bylinskii, D. Gangloff, I. Counts, and V. Vuletic, Nature Materials 15, 717 (2016)]. Using Path-Integral Monte Carlo (PIMC) simulation methods, we analyze the impact of quantum tunneling on the sliding-to-pinned transition in this system, and determine the phase diagram in terms of incommensuration and potential strength. We propose new signatures of the quantum Aubry transition that are robust against thermal and finite-size effects, and that can be observed in future experiments.
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