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Showing 1–9 of 9 results
Advanced filters: Author: Jacob F. Sherson Clear advanced filters
  • The crowd sourcing and gamification of a problem in quantum computing are described; human players succeed in solving the problem where purely numerical optimization fails, providing insight into, and a starting point for, strategies for optimization.

    • Jens Jakob W. H. Sørensen
    • Mads Kock Pedersen
    • Jacob F. Sherson
    Research
    Nature
    Volume: 532, P: 210-213
  • For several years, researchers have aspired to record in situ images of a quantum fluid in which each underlying quantum particle is detected. This goal has now been achieved: here, fluorescence imaging is reported of strongly interacting bosonic Mott insulators in an optical lattice, with single-atom and single-site resolution. The approach opens up new avenues for the manipulation, analysis and applications of strongly interacting quantum gases on a lattice.

    • Jacob F. Sherson
    • Christof Weitenberg
    • Stefan Kuhr
    Research
    Nature
    Volume: 467, P: 68-72
  • Quantum teleportation has been previously demonstrated between objects of the same nature, such as light pulses or material particles. But this paper demonstrates teleportation between objects of a different nature: a quantum state encoded in a light pulse is teleported onto an atomic ensemble containing 1012 caesium atoms.

    • Jacob F. Sherson
    • Hanna Krauter
    • Eugene S. Polzik
    Research
    Nature
    Volume: 443, P: 557-560
  • Ultracold atoms in optical lattices provide a versatile tool to investigate fundamental properties of quantum many-body systems. This paper demonstrates control at the most fundamental level, using a laser beam and microwave field to flip the spin of individual atoms at specific sites of an optical lattice. The technique should enable studies of entropy transport and the quantum dynamics of spin impurities, the implementation of novel cooling schemes, engineering of quantum many-body phases and various quantum information processing applications.

    • Christof Weitenberg
    • Manuel Endres
    • Stefan Kuhr
    Research
    Nature
    Volume: 471, P: 319-324