Soliton States From Quadratic Electron-Phonon Interaction

ORAL

Abstract

We present the first numerically exact study of self-trapped, a.k.a. soliton, states of electrons that form in materials with strong quadratic coupling to the phonon coordinates. Previous studies failed to observe predictions based on the variational approach in continuum space because soliton states form only when system parameters are taken to the extreme limit. At the variational level, we establish that finite-radius solitons emerge through the weak first-order transition as the coupling strength is increased, and subsequently collapse to the single-site state through strong first-order transition. Both transitions transform into smooth crossovers between the light and heavy polaron states in the full quantum treatment. The most surprising effect not observed in any other polaron model is non-monotonic dependence of the soliton effective mass and the residue at strong coupling.

* We acknowledge support from the National Science Foundation under Grants No.DMR-2032136 and No.DMR-2032077.

Publication: https://arxiv.org/abs/2309.10669

Presenters

  • Zhongjin Zhang

    University of Massachusetts Amherst

Authors

  • Zhongjin Zhang

    University of Massachusetts Amherst

  • Anatoly B Kuklov

    CUNY College of Staten Island, College of Staten Island, CUNY

  • Nikolay Prokof'ev

    University of Massachusetts Amherst

  • Boris Svistunov

    University of Massachusetts Amherst