Filter By:

Journal Check one or more journals to show results from those journals only.

Choose more journals

Article type Check one or more article types to show results from those article types only.
Subject Check one or more subjects to show results from those subjects only.
Date Choose a date option to show results from those dates only.

Custom date range

Clear all filters
Sort by:
Showing 1–5 of 5 results
Advanced filters: Author: Andrei Vrajitoarea Clear advanced filters
  • Using particle-by-particle assembly and adiabatic manipulation of disorder, low-entropy, strongly correlated quantum fluids of light are constructed, opening up new possibilities for the preparation of exotic phases of synthetic matter.

    • Brendan Saxberg
    • Andrei Vrajitoarea
    • David I. Schuster
    Research
    Nature
    Volume: 612, P: 435-441
  • Quantum computers based on superconducting transmon qubits are limited by single qubit lifetimes and coherence times, which are orders of magnitude shorter than limits imposed by bulk material properties. Here, the authors fabricate two-dimensional transmon qubits with both lifetimes and coherence times longer than 0.3 milliseconds by replacing niobium with tantalum in the device.

    • Alexander P. M. Place
    • Lila V. H. Rodgers
    • Andrew A. Houck
    ResearchOpen Access
    Nature Communications
    Volume: 12, P: 1-6
  • A flux-tunable inductive coupling between two microwave superconducting resonators allows the operation of one of them as a two-level system. The lifetime is limited by the oscillator’s quality factor, offering potential for highly coherent qubits.

    • Andrei Vrajitoarea
    • Ziwen Huang
    • Andrew A. Houck
    Research
    Nature Physics
    Volume: 16, P: 211-217
  • Edge modes in chiral topological systems can carry quantum information without backscattering. A topological lattice of superconducting resonators has been coupled to a qubit, providing a platform for chiral quantum electrodynamics and communication.

    • John Clai Owens
    • Margaret G. Panetta
    • David I. Schuster
    Research
    Nature Physics
    Volume: 18, P: 1048-1052