0000000000552835

AUTHOR

Vincenzo Macrì

showing 2 related works from this author

Single-step arbitrary control of mechanical quantum states in ultrastrong optomechanics

2015

We describe how ultrastrong interactions in optomechanical systems can be used to force the system ground state to evolve into an arbitrary quantum state of mechanical motion in a completely controlled and deterministic manner. If the target quantum state is a superposition of $N$ Fock states, it can be obtained by applying in single-step $N$ classical optical signals of different frequencies for a common time interval. This protocol can be applied to various strongly interacting quantum systems as trapped ions beyond the Lamb-Dicke regime and cavity QED into the ultrastrong coupling regime.

PhysicsCoupling (physics)Superposition principleQuantum stateQuantum mechanicsNonlinear opticsGround stateMICROMECHANICAL RESONATOR CAVITY OPTOMECHANICS INDUCED TRANSPARENCY NONCLASSICAL STATES COUPLING REGIME TRAPPED ION OSCILLATOR FIELD ELECTRODYNAMICS DECOHERENCEQuantumComputer Science::DatabasesAtomic and Molecular Physics and OpticsOptomechanicsFock space
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Optomechanical Two-Photon Hopping

2023

The hopping mechanism plays a key role in collective phenomena emerging in many-body physics. The ability to create and control systems that display this feature is important for next generation quantum technologies. Here we study two cavities separated by a vibrating two-sided perfect mirror and show that, within currently available experimental parameters, this system displays photon-pair hopping between the two electromagnetic resonators. In particular, the two-photon hopping is not due to tunneling, but rather to higher order resonant processes. Starting from the classical problem, where the vibrating mirror perfectly separates the two sides of the cavity, we quantize the system and the…

Quantum PhysicsMicromechanical &ampnanomechanical oscillatorGeneral Physics and AstronomyFOS: Physical sciencesPhoton hoppingOptomechanicQuantum cavityQuantum Physics (quant-ph)Settore FIS/03 - Fisica Della Materia
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