Li-Xiang Cen

Implementation of qutrit-based quantum information processing via state-dependent forces on trapped ions

Li-Xiang Cen [1], Bang-Pin Hou [2], Ming-Lun Chen [1]

Abstract

We propose a scheme to realize quantum logic and entanglement for qutrit systems via state-dependent forces on trapped ions. By exploiting the laser-ion coupling in the presence of Coulomb interactions, the set of quantum gate operations including the conditional phase shifts on two qutrits as well as arbitrary SU(3) rotations on single qutrits are derived for universal quantum manipulation. As an illustration, we demonstrate in detail how these gate resources could be used to generate the maximally entangled state of two qutrits. Besides being insensitive to vibrational heating of the trapped ions, the present scheme is also shown to be scalable through designing appropriately the pulse configuration of the laser-ion interactions.

Scalable solid-state quantum computation in decoherence-free subspaces with trapped ions

Li-Xiang Cen [1,2], Z. D. Wang [2,3], S. J. Wang [1]

Abstract

We propose a decoherence-free subspaces (DFS) scheme to realize scalable quantum computation with trapped ions. The spin-dependent Coulomb interaction is exploited, and the universal set of unconventional geometric quantum gates is achieved in encoded subspaces that are immune from decoherence by collective dephasing. The scalability of the scheme for the ion array system is demonstrated, either by an adiabatic way of switching on and off the interactions, or by a fast gate scheme with comprehensive DFS encoding and noise decoupling techniques.

Decoherence suppression for oscillator-assisted geometric quantum gates via symmetrization

Li-Xiang Cen [1], Paolo Zanardi [1,2]

Abstract

We propose a novel symmetrization procedure to beat decoherence for oscillator-assisted quantum gate operations. The enacted symmetry is related to the global geometric features of qubits transformation based on ancillary oscillator modes, e.g. phonons in an ion-trap system. It is shown that the devised multi-circuit symmetrized evolution endows the system with a two-fold resilience against decoherence: insensitivity to thermal fluctuations and quantum dissipation.

Non-adiabatic geometric quantum computation with trapped ions

Xin-Qi Li [1,2,3], Li-Xiang Cen [1,2], Guo-Xiang Huang, Lei Ma [2], YiJing Yan [3]

Abstract

We propose a non-adiabatic scheme for geometric quantum computation with trapped ions. By making use of the Aharonov-Anandan phase, the proposed scheme not only preserves the globally geometric nature in quantum computation, but also provides the advantage of non-adiabaticity that overcomes the problem of slow evolution in the existing adiabatic schemes. Moreover, the present scheme requires only two atomic levels in each ion, making it an appealing candidate for quantum computation.