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Marco Roncaglia

Researcher at Polytechnic University of Turin

Publications -  49
Citations -  1065

Marco Roncaglia is an academic researcher from Polytechnic University of Turin. The author has contributed to research in topics: Quantum entanglement & Hubbard model. The author has an hindex of 15, co-authored 49 publications receiving 945 citations. Previous affiliations of Marco Roncaglia include Max Planck Society & Instituto Politécnico Nacional.

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Statistically induced phase transitions and anyons in 1D optical lattices

TL;DR: An experimental setup to create anyons in one-dimensional lattices with fully tuneable exchange statistics and demonstrates how to induce a quantum phase transition from a superfluid into an exotic Mott-like state where the particle distribution exhibits plateaus at fractional densities.
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Long-distance entanglement in spin systems.

TL;DR: It is shown that long-distance entanglement appears for values of the microscopic parameters which do not coincide with known quantum critical points, hence signaling a transition detected only by genuine quantum correlations.
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Qubit teleportation and transfer across antiferromagnetic spin chains.

TL;DR: This work explores the capability of spin-1/2 chains to act as quantum channels for both teleportation and transfer of qubits, and proposes a scheme where channel fidelity close to 1 can be achieved on very long chains at moderately small temperature.
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Pfaffian State Generation by Strong Three-Body Dissipation

TL;DR: A scheme for preparing and stabilizing the Pfaffian state with high fidelity in rapidly rotating 2D traps containing a small number of bosons is proposed by strongly increasing three-body loss processes, which suppress superpositions of three particles while permitting pairing.
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From rotating atomic rings to quantum Hall states

TL;DR: A dynamic path starting from the gas initially confined in a rotating ring is proposed, which brings the interacting atomic gas in the desired quantum-Hall regime and provides numerical evidence that for a broad range of initial angular frequencies, the giant-vortex state is adiabatically connected to the bosonic ν = 1/2 Laughlin state.