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Origin of the crossover from polarons to Fermi liquids in transition metal oxides

机译:过渡金属氧化物中从极化子到费米液体的交换的起源

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摘要

Transition metal oxides host a wealth of exotic phenomena ranging from charge, orbital and magnetic order to nontrivial topological phases and superconductivity. In order to translate these unique materials properties into device functionalities these materials must be doped; however, the nature of carriers and their conduction mechanism at the atomic scale remain unclear. Recent angle-resolved photoelectron spectroscopy investigations provided insight into these questions, revealing that the carriers of prototypical metal oxides undergo a transition from a polaronic liquid to a Fermi liquid regime with increasing doping. Here, by performing ab initio many-body calculations of angle-resolved photoemission spectra of titanium dioxide, we show that this transition originates from non-adiabatic polar electron–phonon coupling, and occurs when the frequency of plasma oscillations exceeds that of longitudinal-optical phonons. This finding suggests that a universal mechanism may underlie polaron formation in transition metal oxides, and provides a pathway for engineering emergent properties in quantum matter.
机译:过渡金属氧化物具有许多奇特的现象,从电荷,轨道和磁序到非平凡的拓扑相和超导电性。为了将这些独特的材料特性转化为器件功能,必须对这些材料进行掺杂;例如,然而,载流子的性质及其在原子尺度上的传导机制仍不清楚。最近的角度分辨光电子能谱研究提供了对这些问题的见解,表明随着掺杂的增加,原型金属氧化物的载体经历了从极化子液体到费米液体状态的转变。在这里,通过对二氧化钛的角度分辨光发射光谱进行从头开始的多体计算,我们表明此转变源自非绝热极性电子-声子耦合,并且当等离子体振荡频率超过纵向光学频率时发生声子。这一发现表明,一种普遍的机制可能是过渡金属氧化物中极化子形成的基础,并为工程化量子物质中的新兴性质提供了途径。

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