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Laser-dressed states on Riemannian manifolds: A generalization of the Kramers-Henneberger transformation

Bendin H., Schwager B., Berakdar J.

Phys. Rev. Research 7, pp 043183 (2025)

Quantum particles under geometric constraints are sensitive to the geometry and topology of the underlying space. We analytically study the laser-driven nonlinear dynamics of a quantum particle whose motion is constrained to a two-dimensional Riemannian manifold embedded in a three-dimensional hyperspace. The geometry of space may result in a potential-like term that supports bound states on the manifold. In the presence of a laser field, we derive expressions for a generalized Kramers-Henneberger-type unitary transformation, which is shown to be generally space- and time-dependent, and deduce a Schrödinger-like equation in the Kramers-Henneberger frame. Compared to a flat (geometrically trivial) space, new time-averaged coefficients of differential operators and operator-valued perturbation terms appear, which determine the geometry-dependent laser-dressed states on Riemannian manifolds.

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