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Equilibrium non-linear phononics by electric field fluctuations of terahertz cavities
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abstract
Selective excitation of vibrational modes using strong laser pulses has emerged as a powerful material engineering paradigm. However, to realize deterministic control over material properties for device applications, it is desirable to have an analogous scheme without a drive, operating in thermal equilibrium. We here propose such an equilibrium analog of the light-driven paradigm, leveraging the strong coupling between lattice degrees of freedom and the quantum fluctuations of the electric field of a THz micro-cavity. We demonstrate this approach by showing, using ab initio data, how electric field fluctuations can induce a sub-dominant ferromagnetic order, on top of the dominant zig-zag antiferromagnet order, in FePS$_3$ close to its N\'eel temperature.
Forward citations
Cited by 2 Pith papers
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Cavity Control of Strongly Correlated Electrons Beyond Resonant Coupling
Off-resonant cavity control of magnetic exchange is governed by the frequency-integrated photonic density of states relative to free space, making surface plasmon cavities effective and Fabry-Pérot cavities ineffective.
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Modifying electronic and structural properties of 2D van der Waals materials via cavity quantum vacuum fluctuations: A first-principles QEDFT study
Cavity vacuum fluctuations are predicted to localize electron density along the cavity polarization, tuning band gaps, interlayer spacing, ferroelectricity, and nonlinear optical response in 2D van der Waals materials.
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