Non-adiabatic holonomic quantum computation in linear system-bath coupling
arXiv:1601.02893
Abstract
Non-adiabatic holonomic quantum computation in decoherence-free subspaces protects quantum information from control imprecisions and decoherence. For the non-collective decoherence that each qubit has its own bath, we show the implementations of two non-commutable holonomic single-qubit gates and one holonomic nontrivial two-qubit gate that compose a universal set of non-adiabatic holonomic quantum gates in decoherence-free-subspaces of the decoupling group, with an encoding rate of . The proposed scheme is robust against control imprecisions and the non-collective decoherence, and its non-adiabatic property ensures less operation time. We demonstrate that our proposed scheme can be realized by utilizing only two-qubit interactions rather than many-qubit interactions. Our results reduce the complexity of practical implementation of holonomic quantum computation in experiments. We also discuss the physical implementation of our scheme in coupled microcavities.
2 figures; accepted by Sci. Rep
References in corpus (12)
- Fault-Tolerant Quantum Dynamical Decoupling
- Decoherence-protected quantum gates for a hybrid solid-state spin register
- Experimental Realization of Non-Abelian Geometric Gates
- Universality of Uhrig dynamical decoupling for suppressing qubit pure dephasing and relaxation
- Effective spin systems in coupled micro-cavities
- High fidelity quantum gates via dynamical decoupling
- Holonomic quantum computation in decoherence-free subspaces
- Towards Fault Tolerant Adiabatic Quantum Computation
- A Magnetic Resonance Realization of Decoherence-Free Quantum Computation
- Quantum Computation in Noiseless Subsystems with Fast Non-Abelian Holonomies
- Physical implementation of holonomic quantum computation in decoherence-free subspaces with trapped ions
- Scalable solid-state quantum computation in decoherence-free subspaces with trapped ions