Charge density waves beyond the Pauli paramagnetic limit in 2D systems

A. Aperis, G. Varelogiannis
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引用次数: 1

Abstract

Two-dimensional materials are ideal candidates to host Charge density waves (CDWs) that exhibit paramagnetic limiting behavior, similarly to the well known case of superconductors. Here we study how CDWs in two-dimensional systems can survive beyond the Pauli limit when they are subjected to a strong magnetic field by developing a generalized mean-field theory of CDWs under Zeeman fields that includes incommensurability, imperfect nesting and temperature effects and the possibility of a competing or coexisting Spin density wave (SDW) order. Our numerical calculations yield rich phase diagrams with distinct high-field phases above the Pauli limiting field. For perfectly nested commensurate CDWs, a $q$-modulated CDW phase that is completely analogous to the superconducting Fulde-Ferrell-Larkin-Ovchinnikov (FFLO) phase appears at high-fields. In the more common case of imperfect nesting, the commensurate CDW groundstate undergoes a series of magnetic-field-induced phase transitions first into a phase where commensurate CDW and SDW coexist and subsequently into another phase where CDW and SDW acquire a $q$-modulation that is however distinct from the pure FFLO CDW phase. The commensurate CDW+SDW phase occurs for fields comparable to but less than the Pauli limit and survives above it. Thus this phase provides a plausible mechanism for the CDW to survive at high fields without the need of forming the more fragile FFLO phase. We suggest that the recently discovered 2D materials like the transition metal dichalcogenides offer a promising platform for observing such exotic field induced CDW phenomena.
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二维系统中超过泡利顺磁极限的电荷密度波
二维材料是承载电荷密度波(cdw)的理想候选材料,它们表现出顺磁限制行为,类似于众所周知的超导体。本文通过建立塞曼场下cdw的广义平均场理论,研究了二维系统中的cdw在强磁场作用下如何在泡利极限之外存活,其中包括不可通约性、不完美嵌套效应和温度效应以及竞争或共存自旋密度波(SDW)顺序的可能性。我们的数值计算得到了丰富的相图,在泡利极限场以上具有明显的高场相。对于完全嵌套的相称CDW,在高场出现了一个完全类似于超导Fulde-Ferrell-Larkin-Ovchinnikov (FFLO)相的$q$调制CDW相位。在不完全套接的更常见情况下,相应的CDW基态经历一系列磁场诱导的相变,首先进入相应的CDW和SDW共存的阶段,随后进入CDW和SDW获得$q$调制的另一个阶段,但与纯FFLO CDW相不同。相应的CDW+SDW阶段发生在与泡利极限相当但小于泡利极限的油田,并在泡利极限以上存活。因此,这一阶段为CDW在高油田生存提供了一种合理的机制,而不需要形成更脆弱的FFLO阶段。我们认为,最近发现的二维材料,如过渡金属二硫族化合物,为观察这种外来场诱导的CDW现象提供了一个有希望的平台。
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