Qubit lattice coherence induced by electromagnetic pulses in superconducting metamaterials
arXiv:1509.07662 · doi:10.1038/srep29374
Abstract
Quantum bits (qubits) are at the heart of quantum information processing schemes. Currently, solid-state qubits, and in particular the superconducting ones, seem to satisfy the requirements for being the building blocks of viable quantum computers, since they exhibit relatively long coherence times, extremely low dissipation, and scalability. The possibility of achieving quantum coherence in macroscopic circuits comprising Josephson junctions, envisioned by Legett in the 1980's, was demonstrated for the first time in a charge qubit; since then, the exploitation of macroscopic quantum effects in low-capacitance Josephson junction circuits allowed for the realization of several kinds of superconducting qubits. Furthermore, coupling between qubits has been successfully achieved that was followed by the construction of multiple-qubit logic gates and the implementation of several algorithms. Here it is demonstrated that induced qubit lattice coherence as well as two remarkable quantum coherent optical phenomena, i.e., self-induced transparency and Dicke-type superradiance, may occur during light-pulse propagation in quantum metamaterials comprising superconducting charge qubits. The generated qubit lattice pulse forms a compound "quantum breather" that propagates in synchrony with the electromagnetic pulse. The experimental confirmation of such effects in superconducting quantum metamaterials may open a new pathway to potentially powerful quantum computing.
Manuscript: 9 pages, 3 figures, 31 references + Supplementary Information: 11 pages, 4 figures
References in corpus (8)
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Cited by in corpus (10)
- Waveguide Bandgap Engineering with an Array of Superconducting Qubits
- Double resonance response of a superconducting quantum metamaterial: manifestation of non-classical states of photons
- Towards the Heisenberg limit in microwave photon detection by a qubit array
- Tuning of Strong Nonlinearity in rf SQUID Meta-Atoms
- Quantum electrodynamics of non-demolition detection of single microwave photon by superconducting qubit array
- Electromagnetic waves propagation through an array of superconducting qubits: manifestations of non-equilibrium steady states of qubits
- Qubit-Photon Bound States in Superconducting Metamaterials
- Entangling continuous variables with a qubit array
- Effects of spatial dispersion on Self--induced transparency in two--level media
- Quantum synchronization in disordered superconducting metamaterials