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Marco Riccardi

Publications and source records attributed to Marco Riccardi.

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Experimental observation of dynamical blockade between transmon qubits via ZZ interaction engineering

We report the experimental realization of strong longitudinal (ZZ) coupling between two superconducting transmon qubits achieved solely through capacitive engineering. By systematically varying the qubit frequency detuning, we measure cross-Kerr inter-qubit interaction strengths ranging from 10 MHz up to 350 MHz, more than an order of magnitude larger than previously observed in similar capacitively coupled systems. In this configuration, the qubits enter a strong-interaction regime in which the excitation of one qubit inhibits that of its neighbor, demonstrating a dynamical blockade mediated entirely by the engineered ZZ coupling. Circuit quantization simulations accurately reproduce the experimental results, while perturbative models confirm the theoretical origin of the energy shift as a hybridization between the computational states and higher-excitation manifolds. We establish a robust and scalable method to access interaction-dominated physics in superconducting circuits, providing a pathway towards solid-state implementations of globally controlled quantum architectures and cooperative many-body dynamics.

quant-ph

Electromagnetic manipulation of sub-500 Da biomolecules

The manipulation of nanoscale matter has the potential to revolutionize a variety of fields across nanoscience and technology. Here, we demonstrate experimentally and characterize numerically a device that combines the benefits of dielectrophoresis (DEP) - long-range and strong trapping forces - with those of plasmonic tweezers - high sensitivities - to achieve a remarkable efficiency in the trapping and sensing of metallic nanoparticles and biomolecules. In particular, we show the DEP trapping and surface enhanced Raman scattering characterization of bovine serum albumin and Rhodamine B, thus extending the applications of tweezing devices to molecules having masses of only a few hundreds of Da. This range covers virtually any molecule relevant for life, from tiny oligopeptides to large proteins. This pushes our manipulation capabilities deep into the realms of efficient single-molecule biosensing and quantum science, providing a powerful platform to probe matter at the nanoscale.

cond-mat.mes-hall

Multipolar expansions for scattering and optical force calculations beyond the long wavelength approximation

We review three different approaches for the calculation of electromagnetic multipoles, namely the Cartesian primitive multipoles, the Cartesian irreducible multipoles and the spherical multipoles. We identify the latter as the best suited to describe the scattering of electromagnetic radiation, as exemplified for an amorphous silicon sphere. These multipoles are then used to calculate the optical force acting on semiconductor, dielectric or metallic particles in a wide wavelength range, from the dipolar down to the Mie regimes.

physics.optics