低维系统中电荷密度波的结构方法:电子不稳定性与化学键

Jean-Paul Pouget, Enric Canadell
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摘要

电荷密度波(CDW)不稳定性通常发生在低维材料中,长期以来一直是人们感兴趣的话题。然而,该机制的一些基本方面仍不清楚。最近,人们制备并表征了大量新型 CDW 材料,其中很大一部分是二维(二维)甚至三维(三维)的块状和/或单层材料。因此,基于 50 多年前为准一维(准一维)导体建立的电子-空穴不稳定性,重新审视不稳定性主要机制的必要性已明显显现。在这项工作中,我们考虑了大量的 CDW 材料,重新审视了用于理解 CDW 不稳定性的主要概念,并强调了与动量相关的电子-声子耦合在连接电子自由度和结构自由度方面的关键作用。我们认为,对于准一维系统,早期的弱耦合理论能恰当地发挥作用,CDW 和随之而来的周期性晶格畸变(PLD)导致的能量增益仍主要归因于费米面嵌套机制。然而,对于维度较高的材料,中间耦合和强耦合机制通常会发挥作用,而 PLD 对化学键网络的改变是不稳定性的核心所在。我们强调,在理解这些材料的 CDW 现象时,需要采用一种微观方法,将凝聚态物理概念和最先进的第一原理计算与相当基础的化学键思想结合起来。
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Structural approach to charge density waves in low-dimensional systems: electronic instability and chemical bonding.

The charge density wave (CDW) instability, usually occurring in low-dimensional metals, has been a topic of interest for longtime. However, some very fundamental aspects of the mechanism remain unclear. Recently, a plethora of new CDW materials, a substantial fraction of which is two-dimensional or even three-dimensional, has been prepared and characterised as bulk and/or single-layers. As a result, the need for revisiting the primary mechanism of the instability, based on the electron-hole instability established more than 50 years ago for quasi-one-dimensional (quasi-1D) conductors, has clearly emerged. In this work, we consider a large number of CDW materials to revisit the main concepts used in understanding the CDW instability, and emphasise the key role of the momentum dependent electron-phonon coupling in linking electronic and structural degrees of freedom. We argue that for quasi-1D systems, earlier weak coupling theories work appropriately and the energy gain due to the CDW and the concomitant periodic lattice distortion (PLD) remains primarily due to a Fermi surface nesting mechanism. However, for materials with higher dimensionality, intermediate and strong coupling regimes are generally at work and the modification of the chemical bonding network by the PLD is at the heart of the instability. We emphasise the need for a microscopic approach blending condensed matter physics concepts and state-of-the-art first-principles calculations with quite fundamental chemical bonding ideas in understanding the CDW phenomenon in these materials.

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