Electronically Amplified Electron-Phonon Interaction and Metal-Insulator Transition in Perovskite Nickelates
Yong Zhong, Kyuho Lee, Regan Bhatta, Yonghun Lee, Martin Gonzalez,, Jiarui Li, Ruohan Wang, Makoto Hashimoto, Donghui Lu, Sung-Kwan Mo, Chunjing, Jia, Harold Y. Hwang, and Zhi-Xun Shen

TL;DR
This study reveals how electron-phonon interactions, amplified by electronic correlations, drive the metal-insulator transition in perovskite nickelates, highlighting the importance of lattice effects in electronic phase changes.
Contribution
It provides a detailed three-dimensional electronic structure analysis showing the amplification of electron-phonon coupling by correlations during the transition.
Findings
Electron-phonon interaction is amplified in the insulating phase.
Coupling with octahedral phonons affects electron dynamics.
Transition involves transformation from large to small polarons.
Abstract
The relative role of electron-electron and electron-lattice interactions in driving the metal-insulator transition in perovskite nickelates opens a rare window into the non-trivial interplay of the two important degrees of freedom in solids. The most promising solution is to extract the electronic and lattice contributions during the phase transition by performing high-resolution spectroscopy measurements. Here, we present a three-dimensional electronic structure study of Nd1-xSrxNiO3 (x = 0 and 0.175) thin films with unprecedented accuracy, in which the low energy fermiology has a quantitative agreement with model simulations and first-principles calculations. Two characteristic phonons, the octahedral rotational and breathing modes, are illustrated to be coupled with the electron dynamics in the metallic phase, showing a kink structure along the band dispersion, as well as a hump…
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Taxonomy
TopicsThermal Expansion and Ionic Conductivity · Magnetic and transport properties of perovskites and related materials · Ferroelectric and Piezoelectric Materials
