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Dynamical time-reversal symmetry breaking and photo-induced chiral spin liquids in frustrated Mott insulators

机译:沮丧的Mott绝缘子中的动态时间逆对称破裂和光诱导手性自旋液体

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摘要

The search for quantum spin liquids in frustrated quantum magnets recently has enjoyed a surge of interest, with various candidate materials under intense scrutiny. However, an experimental confirmation of a gapped topological spin liquid remains an open question. Here, we show that circularly polarized light can provide a knob to drive frustrated Mott insulators into a chiral spin liquid, realizing an elusive quantum spin liquid with topological order. We find that the dynamics of a driven Kagome Mott insulator is well-captured by an effective Floquet spin model, with heating strongly suppressed, inducing a scalar spin chirality S i · (S j ×?S k ) term which dynamically breaks time-reversal while preserving SU(2) spin symmetry. We fingerprint the transient phase diagram and find a stable photo-induced chiral spin liquid near the equilibrium state. The results presented suggest employing dynamical symmetry breaking to engineer quantum spin liquids and access elusive phase transitions that are not readily accessible in equilibrium.
机译:最近,在受挫的量子磁体中寻找量子自旋液体的兴趣激增,各种候选材料都受到了严格的审查。但是,实验证明有空隙的拓扑自旋液体仍然是一个悬而未决的问题。在这里,我们显示圆偏振光可以提供一个旋钮,将受挫的Mott绝缘子驱动到手性自旋液体中,从而实现具有拓扑顺序的难以捉摸的量子自旋液体。我们发现,通过有效的Floquet自旋模型可以很好地捕获被驱动的Kagome Mott绝缘子的动力学,并强烈地抑制了加热,从而引发了标量自旋手性S i·(S j×?S k)项,该项动态地打破了时间反转。同时保留SU(2)自旋对称性。我们对瞬态相图进行指纹识别,并在平衡态附近找到稳定的光致手性自旋液体。提出的结果表明,采用动态对称断裂来工程化量子自旋液体,并进入难以在平衡状态下获得的难以捉摸的相变。

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