Core-level signature of long-range density-wave order and short-range excitonic correlations probed by attosecond broadband spectroscopy
Alfred Zong, Sheng-Chih Lin, Shunsuke A. Sato, Emma Berger, Bailey R., Nebgen, Marcus Hui, B. Q. Lv, Yun Cheng, Wei Xia, Yanfeng Guo, Dao Xiang,, Michael W. Zuerch

TL;DR
This study uses advanced attosecond core-level spectroscopy to detect long-range charge-density-wave order and short-range excitonic correlations in a quasi-2D material, revealing dynamics not observable with traditional methods.
Contribution
It demonstrates the capability of attosecond core-level spectroscopy to probe both long- and short-range electronic orders and dynamics in quantum materials, especially in the context of exciton condensation.
Findings
Detected core-level signatures of long-range CDW order.
Observed excitonic correlations in the normal state.
Showed the importance of short-range fluctuations preceeding long-range order.
Abstract
Advances in attosecond core-level spectroscopies have successfully unlocked the fastest dynamics involving high-energy electrons. Yet, these techniques are not conventionally regarded as an appropriate probe for low-energy quasiparticle interactions that govern the ground state of quantum materials, nor for studying long-range order because of their limited sensitivity to local charge environments. Here, by employing a unique cryogenic attosecond beamline, we identified clear core-level signatures of long-range charge-density-wave (CDW) formation in a quasi-2D excitonic insulator candidate, even though equilibrium photoemission and absorption measurements of the same core levels showed no spectroscopic singularity at the phase transition. Leveraging the high time resolution and intrinsic sensitivity to short-range charge excitations in attosecond core-level absorption, we observed…
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Taxonomy
TopicsSpectroscopy and Quantum Chemical Studies · Semiconductor Quantum Structures and Devices · Laser-Matter Interactions and Applications
