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A two-dimensional spin liquid in quantum kagome ice

机译:量子kagome冰中的二维自旋液体

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摘要

Actively sought since the turn of the century, two-dimensional quantum spin liquids (QSLs) are exotic phases of matter where magnetic moments remain disordered even at zero temperature. Despite ongoing searches, QSLs remain elusive, due to a lack of concrete knowledge of the microscopic mechanisms that inhibit magnetic order in materials. Here we study a model for a broad class of frustrated magnetic rare-earth pyrochlore materials called quantum spin ices. When subject to an external magnetic field along the [111] crystallographic direction, the resulting interactions contain a mix of geometric frustration and quantum fluctuations in decoupled two-dimensional kagome planes. Using quantum Monte Carlo simulations, we identify a set of interactions sufficient to promote a groundstate with no magnetic long-range order, and a gap to excitations, consistent with a Z(2) spin liquid phase. This suggests an experimental procedure to search for two-dimensional QSLs within a class of pyrochlore quantum spin ice materials.
机译:自本世纪初以来,二维量子自旋液体(QSL)一直是人们的积极追求,是物质的奇异相,即使在零温度下,磁矩也保持无序。尽管进行了持续的搜索,但是由于缺乏抑制材料中磁性顺序的微观机制的具体知识,QSL仍然难以捉摸。在这里,我们研究了一种称为量子自旋冰的沮丧的磁性稀土烧绿石材料的模型。当沿着[111]晶体学方向受到外部磁场作用时,所产生的相互作用包含解耦二维kagome平面中的几何挫折感和量子涨落的混合。使用量子蒙特卡洛模拟,我们确定了一组相互作用,足以促进没有磁性远距离有序的基态,并且激发间隙与Z(2)自旋液相一致。这表明在一种烧绿石量子自旋冰材料中搜索二维QSL的实验程序。

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