PaperPanorama

arXiv:2502.05170·v1·Mesoscale and Nanoscale Physics

Observation of a dynamic magneto-chiral instability in photoexcited tellurium

Yijing Huang · Nick Abboud · Yinchuan Lv · Penghao Zhu · Azel Murzabekova · Changjun Lee · Emma A. Pappas · Dominic Petruzzi · Jason Y. Yan · Dipanjan Chauduri · Peter Abbamonte · Daniel P. Shoemaker

Abstract

In a system of charged chiral fermions driven out of equilibrium, an electric current parallel to the magnetic field can generate a dynamic instability by which electromagnetic waves become amplified. Whether a similar instability can occur in chiral solid-state systems remains an open question. Using time-domain terahertz (THz) emission spectroscopy, we detect signatures of what we dub a ``dynamic magneto-chiral instability" in elemental tellurium, a structurally chiral crystal. Upon transient photoexcitation in a moderate external magnetic field, tellurium emits THz radiation consisting of coherent modes that amplify over time. An explanation for this amplification is proposed using a theoretical model based on a dynamic instability of electromagnetic waves interacting with infrared-active oscillators of impurity acceptor states in tellurium to form an amplifying polariton. Our work not only uncovers the presence of a magneto-chiral instability but also highlights its promise for THz-wave amplification in chiral materials.

Comments: Supplementary Information (SI) available as a PDF in the TeX source