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Nonlinear optical response of truly chiral phonons: Light-induced phonon angular momentum, Peltier effect, and orbital current
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Nonlinear optical response of truly chiral phonons: Light-induced phonon angular momentum, Peltier effect, and orbital current
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The nonlinear optical responses of chiral phonons to terahertz and infrared light are studied using the nonlinear response theory. We show that the photo-induced angular momentum increases with the square of the chiral-phonon relaxation time $\tau$, giving a significantly larger angular momentum compared to ordinary phonons. We also find that the photo-induced Peltier effect by chiral phonons occurs through a mechanism distinct from those proposed recently; the induced energy current scales $\propto\tau^2$, giving a larger energy current in the clean limit. We prove a linear relation between the generated angular momentum and the energy current. Lastly, we show that the orbital current, an analog of the spin current, occurs through a nonlinear response. These findings demonstrate the unique properties and functionalities of chiral phonons.
Forward citations
Cited by 3 Pith papers
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Boundary condition for phonon distribution functions at a smooth crystal interface and interfacial angular momentum transfer
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Chiral phonons induce a time-averaged electronic orbital angular momentum via adiabatic Berry-phase dynamics, with sign set by phonon chirality, in p-orbital honeycomb and TMD monolayers.
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Electrical control of spin photocurrent in a magnetoelectric oxide Cr$_2$O$_3$
Nonlinear response theory predicts electric-field control of spin photocurrent in Cr2O3 via field-induced DMI, with polarization anisotropy, E-dependent resonance/intensity, and two-magnon continuum from spin canting.
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