English

High fidelity quantum memory via dynamical decoupling: theory and experiment

Quantum Physics 2011-07-26 v3 Other Condensed Matter Chemical Physics

Abstract

Quantum information processing requires overcoming decoherence---the loss of "quantumness" due to the inevitable interaction between the quantum system and its environment. One approach towards a solution is quantum dynamical decoupling---a method employing strong and frequent pulses applied to the qubits. Here we report on the first experimental test of the concatenated dynamical decoupling (CDD) scheme, which invokes recursively constructed pulse sequences. Using nuclear magnetic resonance, we demonstrate a near order of magnitude improvement in the decay time of stored quantum states. In conjunction with recent results on high fidelity quantum gates using CDD, our results suggest that quantum dynamical decoupling should be used as a first layer of defense against decoherence in quantum information processing implementations, and can be a stand-alone solution in the right parameter regime.

Keywords

Cite

@article{arxiv.0911.2398,
  title  = {High fidelity quantum memory via dynamical decoupling: theory and experiment},
  author = {Xinhua Peng and Dieter Suter and Daniel A. Lidar},
  journal= {arXiv preprint arXiv:0911.2398},
  year   = {2011}
}

Comments

6 pages, 3 figures. Published version. This paper was initially entitled "Quantum gates via concatenated dynamical decoupling: theory and experiment", by Jacob R. West, Daniel A. Lidar, Bryan H. Fong, Mark F. Gyure, Xinhua Peng, and Dieter Suter. That original version split into two papers: http://arxiv.org/abs/1012.3433 (theory only) and the current paper

R2 v1 2026-06-21T14:10:47.318Z