论文标题

由于量子雪崩而导致的绝缘体塌陷

Correlated Insulator Collapse due to Quantum Avalanche via In-Gap Ladder States

论文作者

Han, Jong E., Aron, Camille, Han, Jae-Ho, Kim, Ki-Seok, Mansaray, Ishiaka, Randle, Michael, Bird, Jonathan P.

论文摘要

我们提出了一种微观机制,以解决相关电子系统中绝缘体到金属过渡的长期难题,最著名的是电荷密度波(CDW)材料和Mott绝缘子,通过DC电场驱动了远距离均衡。通过引入与声子无弹性介质相连的电子模型,我们证明了电子雪崩可以在任意小的电场的这种绝缘子的大量极限中发生。量子雪崩是由多声音排放过程产生的差距梯子产生的。雪崩中的热音引发了相关间隙的过早和部分崩溃。声子频谱的细节决定了我们与CDW和MOTT电阻跃迁相关联的两阶段机制。电子和声子温度以及阈值场的温度依赖性指向这种非平衡相变的量子性质。

We propose a microscopic mechanism to resolve the long-standing puzzle of the insulator-to-metal transition in correlated electronic systems, most notably charge-density-wave (CDW) materials and Mott insulators, driven far-from-equilibrium by a DC electric field. By introducing a generic model of electrons coupled to an inelastic medium of phonons, we demonstrate that an electron avalanche can occur in the bulk limit of such insulators at arbitrarily small electric field. The quantum avalanche arises by the generation of a ladder of in-gap states, created by a multi-phonon emission process. Hot-phonons in the avalanche trigger a premature and partial collapse of the correlated gap. The details of the phonon spectrum dictate two-stage versus single-stage mechanisms which we associate with CDW and Mott resistive transitions, respectively. The electron and phonon temperatures, as well as the temperature dependence of the threshold fields, point to the quantum nature of this nonequilibrium phase transition.

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