Vincenzo Macrì
University of Messina
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Featured researches published by Vincenzo Macrì.
Physical Review A | 2015
Luigi Garziano; Roberto Stassi; Vincenzo Macrì; Anton Frisk Kockum; Salvatore Savasta; Franco Nori
When an atom is strongly coupled to a cavity, the two systems can exchange a single photon through a coherent Rabi oscillation. This process enables precise quantum-state engineering and manipulation of atoms and photons in a cavity, which play a central role in quantum information and measurement. Recently, a new regime of cavity QED was reached experimentally where the strength of the interaction between light and artificial atoms (qubits) becomes comparable to the atomic transition frequency or the resonance frequency of the cavity mode. Here we show that this regime can strongly modify the concept of vacuum Rabi oscillations, enabling multiphoton exchanges between the qubit and the resonator. We find that experimental state-of-the-art circuit-QED systems can undergo two- and three-photon vacuum Rabi oscillations. These anomalous Rabi oscillations can be exploited for the realization of efficient Fock-state sources of light and complex entangled states of qubits.
Physical Review Letters | 2016
Luigi Garziano; Vincenzo Macrì; Roberto Stassi; Omar Di Stefano; Franco Nori; Salvatore Savasta
We consider two separate atoms interacting with a single-mode optical or microwave resonator. When the frequency of the resonator field is twice the atomic transition frequency, we show that there exists a resonant coupling between one photon and two atoms, via intermediate virtual states connected by counterrotating processes. If the resonator is prepared in its one-photon state, the photon can be jointly absorbed by the two atoms in their ground state which will both reach their excited state with a probability close to one. Like ordinary quantum Rabi oscillations, this process is coherent and reversible, so that two atoms in their excited state will undergo a downward transition jointly emitting a single cavity photon. This joint absorption and emission process can also occur with three atoms. The parameters used to investigate this process correspond to experimentally demonstrated values in circuit quantum electrodynamics systems.
Physical Review A | 2017
Anton Frisk Kockum; Adam Miranowicz; Vincenzo Macrì; Salvatore Savasta; Franco Nori
We show how analogues of a large number of well-known nonlinear-optics phenomena can be realized with one or more two-level atoms coupled to one or more resonator modes. Through higher-order processes, where virtual photons are created and annihilated, an effective deterministic coupling between two states of such a system can be created. In this way, analogues of three-wave mixing, four-wave mixing, higher-harmonic and -subharmonic generation (i.e., up- and downconversion), multiphoton absorption, parametric amplification, Raman and hyper-Raman scattering, the Kerr effect, and other nonlinear processes can be realized. The effective coupling becomes weaker the more intermediate transition steps are needed. However, given the recent experimental progress in ultrastrong light-matter coupling, especially in the field of circuit quantum electrodynamics, we estimate that many of these nonlinear-optics analogues can be realized with currently available technology.
Physical Review A | 2017
Roberto Stassi; Vincenzo Macrì; Anton Frisk Kockum; Omar Di Stefano; Adam Miranowicz; Salvatore Savasta; Franco Nori
Spontaneous parametric down-conversion is a well-known process in quantum nonlinear optics in which a photon incident on a nonlinear crystal spontaneously splits into two photons. Here we propose an analogous physical process where one excited atom directly transfers its excitation to a pair of spatially-separated atoms with probability approaching one. The interaction is mediated by the exchange of virtual rather than real photons. This nonlinear atomic process is coherent and reversible, so the pair of excited atoms can transfer the excitation back to the first one: the atomic analogue of sum-frequency generation of light. The parameters used to investigate this process correspond to experimentally-demonstrated values in ultrastrong circuit quantum electrodynamics. This approach can be extended to realize other nonlinear inter-atomic processes, such as four-atom mixing, and is an attractive architecture for the realization of quantum devices on a chip. We show that four-qubit mixing can efficiently implement quantum repetition codes and, thus, can be used for error-correction codes.
Scientific Reports | 2017
Anton Frisk Kockum; Vincenzo Macrì; Luigi Garziano; Salvatore Savasta; Franco Nori
We propose a new method for frequency conversion of photons which is both versatile and deterministic. We show that a system with two resonators ultrastrongly coupled to a single qubit can be used to realise both single- and multiphoton frequency-conversion processes. The conversion can be exquisitely controlled by tuning the qubit frequency to bring the desired frequency-conversion transitions on or off resonance. Considering recent experimental advances in ultrastrong coupling for circuit QED and other systems, we believe that our scheme can be implemented using available technology.
Physical Review X | 2018
Vincenzo Macrì; A. Ridolfo; Omar Di Stefano; Anton Frisk Kockum; Franco Nori; Salvatore Savasta
Physical Review A | 2016
Vincenzo Macrì; Luigi Garziano; A. Ridolfo; O. Di Stefano; Salvatore Savasta
Physical Review A | 2015
Luigi Garziano; Roberto Stassi; Vincenzo Macrì; Salvatore Savasta; O. Di Stefano
arXiv: Quantum Physics | 2018
Alessio Settineri; Vincenzo Macrì; A. Ridolfo; Omar Di Stefano; Anton Frisk Kockum; Franco Nori; Salvatore Savasta
arXiv: Quantum Physics | 2018
O. Di Stefano; A. Settineri; Vincenzo Macrì; Luigi Garziano; Roberto Stassi; Salvatore Savasta; Franco Nori