Towards an Atomtronic Diode

Physics American Physical Society (APS) 8 (2015) 72

Quantum optics of chiral spin networks

Physical Review A American Physical Society (APS) 91:4 (2015) 042116

Authors:

Hannes Pichler, Tomás Ramos, Andrew J Daley, Peter Zoller

Adiabatic cooling of bosons in lattices to magnetic ordering

(2015)

Authors:

Johannes Schachenmayer, David M Weld, Hirokazu Miyake, Georgios A Siviloglou, Andrew J Daley, Wolfgang Ketterle

A new type of half-quantum circulation in a macroscopic polariton spinor ring condensate.

Proceedings of the National Academy of Sciences of the United States of America 112:9 (2015) 2676-2681

Authors:

Gangqiang Liu, David W Snoke, Andrew Daley, Loren N Pfeiffer, Ken West

Abstract:

We report the observation of coherent circulation in a macroscopic Bose-Einstein condensate of polaritons in a ring geometry. Because they are spinor condensates, half-quanta are allowed in where there is a phase rotation of π in connection with a polarization vector rotation of π around a closed path. This half-quantum behavior is clearly seen in the experimental observations of the polarization rotation around the ring. In our ring geometry, the half-quantum state that we see is one in which the handedness of the spin flips from one side of the ring to the other side in addition to the rotation of the linear polarization component; such a state is allowed in a ring geometry but will not occur in a simply connected geometry. This state is lower in energy than a half-quantum state with no change of the spin direction and corresponds to a superposition of two different elementary half-quantum states. The direction of circulation of the flow around the ring fluctuates randomly between clockwise and counterclockwise from one shot to the next; this fluctuation corresponds to spontaneous breaking of time-reversal symmetry in the system. This type of macroscopic polariton ring condensate allows for the possibility of direct control of the circulation to excite higher quantized states and the creation of Josephson junction tunneling barriers.

Quantum spin dimers from chiral dissipation in cold-atom chains.

Physical review letters 113:23 (2014) 237203

Authors:

Tomás Ramos, Hannes Pichler, Andrew J Daley, Peter Zoller

Abstract:

We consider the nonequilibrium dynamics of a driven dissipative spin chain with chiral coupling to a one-dimensional (1D) bosonic bath, and its atomic implementation with a two-species mixture of cold quantum gases. The reservoir is represented by a spin-orbit coupled 1D quasicondensate of atoms in a magnetized phase, while the spins are identified with motional states of a separate species of atoms in an optical lattice. The chirality of reservoir excitations allows the spins to couple differently to left- and right-moving modes, which in our atomic setup can be tuned from bidirectional to purely unidirectional. Remarkably, this leads to a pure steady state in which pairs of neighboring spins form dimers that decouple from the remainder of the chain. Our results also apply to current experiments with two-level emitters coupled to photonic waveguides.