Observation of a ferro-rotational order coupled with second-order nonlinear optical fields
Wencan Jin, Elizabeth Drueke, Siwen Li, Alemayehu Admasu, Rachel Owen,, Matthew Day, Kai Sun, Sang-Wook Cheong, Liuyan Zhao

TL;DR
This study reports the first direct observation of ferro-rotational order in a multiferroic material using high sensitivity rotational anisotropy second harmonic generation, revealing its phase transition and domain behavior.
Contribution
It introduces a novel experimental approach to detect ferro-rotational order via electric quadrupole contributions in nonlinear optics, advancing understanding of this elusive ferroic phase.
Findings
Ferro-rotational domains emerge with opposite vectors at Tc ~195 K.
The ferro-rotational phase transition is weak first order.
Identified conjugate coupling field via induced EQ SHG and electric fields.
Abstract
The ferro-rotational order, whose order parameter (OP) is an axial vector invariant under both time reversal (TR) and spatial inversion (SI) operations, is the last remaining category of ferroics to be observed after the ferroelectric, ferromagnetic, and ferro-toroidal orders. This order has become increasingly popular in many new quantum materials, especially in complex oxides, and is considered responsible for a number of novel phenomena such as polar vortices, giant magnetoelectric coupling, and type-II multiferroics. However, physical properties of the ferro-rotational order have been rarely studied either theoretically or experimentally. Here, using high sensitivity rotational anisotropy second harmonic generation (RA SHG), we have, for the first time, exploited the electric quadrupole (EQ) contribution to the SHG to directly couple to this centrosymmetric ferro-rotational order in…
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