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Terahertz spectroscopy of collective charge density wave dynamics at the atomic scale

Physics

Terahertz spectroscopy of collective charge density wave dynamics at the atomic scale

S. Sheng, M. Abdo, et al.

This groundbreaking research by Shaoxiang Sheng and colleagues utilizes terahertz pump-probe spectroscopy to explore ultrafast charge density wave dynamics in 2H-NbSe₂ at atomic-scale resolution. By uncovering how atomic impurities influence these oscillations, this study offers fascinating insights into the intricate dance of electron density modulations.

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~3 min • Beginner • English
Abstract
Charge density waves are wave-like modulations of a material's electron density that display collective amplitude and phase dynamics. The interaction with atomic impurities induces strong spatial heterogeneity of the charge-ordered phase. Direct real-space observation of phase excitation dynamics of such defect-induced charge modulation is absent. Here, by utilizing terahertz pump-probe spectroscopy in a scanning tunnelling microscope, we measure the ultrafast collective dynamics of the charge density wave in the transition metal dichalcogenide 2H-NbSe2 with atomic spatial resolution. The tip-enhanced electric field of the terahertz pulses excites oscillations of the charge density wave that vary in magnitude and frequency on the scale of individual atomic impurities. Overlapping phase excitations originating from the randomly distributed atomic defects in the surface create this spatially structured response of the charge density wave. This ability to observe collective charge order dynamics with local probes makes it possible to study the dynamics of correlated materials at the intrinsic length scale of their underlying interactions.
Publisher
Nature Physics
Published On
Jul 15, 2024
Authors
Shaoxiang Sheng, Mohamad Abdo, Steffen Rolf-Pissarczyk, Kurt Lichtenberg, Susanne Baumann, Jacob A. J. Burgess, Luigi Malavolti, Sebastian Loth
Tags
charge density waves
terahertz spectroscopy
ultrafast dynamics
atomic impurities
2H-NbSe₂
collective dynamics
scanning tunneling microscopy
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