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Dive into the research topics where C. Di Franco is active.

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Featured researches published by C. Di Franco.


Physical Review Letters | 2008

Perfect State Transfer on a Spin Chain without State Initialization

C. Di Franco; Mauro Paternostro; M. S. Kim

We demonstrate that perfect state transfer can be achieved using an engineered spin chain and clean local end-chain operations, without requiring the initialization of the state of the medium nor fine-tuning of control pulses. This considerably relaxes the prerequisites for obtaining reliable transfer of quantum information across interacting-spin systems. Moreover, it allows us to shed light on the interplay among purity, entanglement, and operations on a class of many-body systems potentially useful for quantum information processing tasks.


Physical Review A | 2011

Propagation of nonclassical correlations across a quantum spin chain

Steve Campbell; Tony J. G. Apollaro; C. Di Franco; L. Banchi; Alessandro Cuccoli; R. Vaia; Francesco Plastina; Mauro Paternostro

We study the transport of quantum correlations across a chain of interacting spin-1/2 particles. As a quantitative figure of merit, we choose a symmetric version of quantum discord and compare it with the transported entanglement, addressing various operating regimes of the spin medium. Discord turns out to be better transported for a wide range of working points and initial conditions of the system. We relate this behavior to the efficiency of propagation of a single excitation across the spin chain. Moreover, we point out the role played by a magnetic field in the dynamics of discord in the effective channel embodied by the chain. Our analysis can be interestingly extended to transport processes in more complex networks and the study of nonclassical correlations under general quantum channels.


Physical Review Letters | 2009

Hamiltonian Tomography in an Access-Limited Setting without State Initialization

C. Di Franco; Mauro Paternostro; M. S. Kim

We propose a scheme for the determination of the coupling parameters in a chain of interacting spins. This requires only time-resolved measurements over a single particle, simple data postprocessing and no state initialization or prior knowledge of the state of the chain. The protocol fits well into the context of quantum-dynamics characterization and is efficient even when the spin chain is affected by general dissipative and dephasing channels. We illustrate the performance of the scheme by analyzing explicit examples and discuss possible extensions.


New Journal of Physics | 2010

Manipulating and protecting entanglement by means of spin environments

Tony J. G. Apollaro; Alessandro Cuccoli; C. Di Franco; Mauro Paternostro; Francesco Plastina; Paola Verrucchi

We study the dynamical behavior of two initially entangled qubits, each locally coupled to an environment embodied by an interacting spin chain. We consider energy-exchange qubit–environment couplings resulting in rich and highly non-trivial entanglement dynamics. We obtain exact results for the time evolution of the concurrence between the two qubits and find that, by tuning the interaction parameters, one can freeze the dynamics of entanglement, therefore inhibiting their relaxation into the spin environments, as well as activate a sudden-death phenomenon. We also discuss the effects of an environmental quantum phase transition on the features of the two-qubit entanglement dynamics.


Physical Review A | 2008

Control-limited perfect state transfer, quantum stochastic resonance and many-body entangling gate in imperfect qubit registers

C. Di Franco; Mauro Paternostro; Dimitris I. Tsomokos; Susana F. Huelga

Original article can be found at: http://pra.aps.org/ Copyright American Physical Society. DOI: 10.1103/PhysRevA.77.062337


Physical Review A | 2007

Information-flux approach to multiple-spin dynamics

C. Di Franco; Mauro Paternostro; G. M. Palma; Mihyang Kim

We introduce and formalize the concept of information flux in a many-body register as the influence that the dynamics of a specific element receive from any other element of the register. By quantifying the information flux in a protocol, we can design the most appropriate initial state of the system and, noticeably, the distribution of coupling strengths among the parts of the register itself. The intuitive nature of this tool and its flexibility, which allow for easily manageable numerical approaches when analytic expressions are not straightforward, are greatly useful in interacting many-body systems such as quantum spin chains. We illustrate the use of this concept in quantum cloning and quantum state transfer and we also sketch its extension to nonunitary dynamics.


Physical Review A | 2008

Nested entangled states for distributed quantum channels

C. Di Franco; Mauro Paternostro; M. S. Kim

We find a coupling-strength configuration for a linear chain of N spins which gives rise to simultaneous multiple Bell states. We suggest a way such an interesting entanglement pattern can be used in order to distribute maximally entangled channels to remote locations and generate multipartite entanglement with a minimum-control approach. Our proposal thus provides a way to achieve the core resources in distributed information processing. The schemes we describe can be efficiently tested in chains of coupled cavities interacting with three-level atoms.


Physical Review A | 2010

Quantum state transfer via temporal kicking of information

C. Di Franco; Mauro Paternostro; M. S. Kim

We propose a strategy for perfect state transfer in spin chains based on the use of an unmodulated coupling Hamiltonian whose coefficients are explicitly time dependent. We show that, if specific and nondemanding conditions are satisfied by the temporal behavior of the coupling strengths, our model allows perfect state transfer. The paradigm put forward by our proposal holds the promises to set an alternative standard to the use of clever encoding and coupling-strength engineering for perfect state transfer.


International Journal of Quantum Information | 2008

A DEEPER INSIGHT INTO QUANTUM STATE TRANSFER FROM AN INFORMATION FLUX VIEWPOINT

C. Di Franco; Mauro Paternostro; G. M. Palma

We use the recently introduced concept of information flux in a many-body register in order to give an alternative viewpoint on quantum state transfer in linear chains of many spins.


Physics Letters A | 2014

Glued trees algorithm under phase damping

Jacqueline Lockhart; C. Di Franco; Mauro Paternostro

Abstract We study the behaviour of the glued trees algorithm described by Childs et al. in [1] under decoherence. We consider a discrete time reformulation of the continuous time quantum walk protocol and apply a phase damping channel to the coin state, investigating the effect of such a mechanism on the probability of the walker appearing on the target vertex of the graph. We pay particular attention to any potential advantage coming from the use of weak decoherence for the spreading of the walk across the glued trees graph.

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Mauro Paternostro

Queen's University Belfast

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M. S. Kim

Imperial College London

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Mihyang Kim

Queen's University Belfast

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D. Ballester

Queen's University Belfast

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Susana F. Huelga

University of Hertfordshire

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