Exploring vibronic dynamics near a sloped conical intersection with trapped Rydberg ions
Abdessamad Belfakir, Weibin Li

TL;DR
This paper demonstrates how trapped Rydberg ions can be used to engineer and control vibronic dynamics near a sloped conical intersection, revealing complex tunneling and revival phenomena relevant for quantum simulations.
Contribution
It introduces a method to create and manipulate sloped conical intersections in Rydberg ion systems, enabling detailed study of nonadiabatic dynamics.
Findings
Potential energy surfaces can be engineered via sideband transitions.
Distinct dynamical behaviors observed depending on initial states.
Complete Rabi oscillations occur on microsecond timescales.
Abstract
We study spin-phonon coupled dynamics in the vicinity of a sloped conical intersection created by laser coupling the electronic (spin) and vibrational degrees of freedom of a pair of trapped Rydberg ions. We show that the shape of the potential energy surfaces can be engineered and controlled by exploiting the sideband transitions of the crystal vibration and dipole-dipole interactions between Rydberg ions in the Lamb-Dicke regime. Using the sideband transition, we realize a sloped conical intersection whose cone axis is only tilted along one spatial axis. When the phonon wavepacket is located in the potential minimum of the lower potential surface, the spin and phonon dynamics are largely frozen owing to the geometric phase effect. When starting from the upper potential surface, the electronic and phonon states tunnel to the lower potential surface, leading to a partial revival of the…
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Taxonomy
TopicsQuantum chaos and dynamical systems · Cold Atom Physics and Bose-Einstein Condensates · Quantum Information and Cryptography
