Arbitrary Quantum Control of Qubits in the Presence of Universal Noise

Abstract

We address the problem of deriving analytic expressions for calculating universal decoherence-induced errors in qubits undergoing arbitrary, unitary, time-dependent quantum control protocols. We show that the fidelity of a control operation may be expressed in terms of experimentally relevant spectral characteristics of the noise and of the control, over all Cartesian directions. We formulate control matrices in the time domain to capture the effects of piecewise-constant control, and convert them to generalized Fourier domain filter functions. These generalized filter functions may be derived for complex temporally modulated control protocols, accounting for susceptibility to rotations of the qubit state vector in three dimensions. Taken together, we show that this framework provides a computationally efficient means to calculate the effects of universal noise on arbitrary quantum control protocols, producing results comparable with those obtained via time-consuming simulations of Bloch vector evolution. As a concrete example, we apply our method to treating the problem of dynamical decoupling incorporating realistic control pulses of arbitrary duration or form, including the replacement of simple -pulses with complex dynamically corrected gates.

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Document Details

Document Type
Technical Report
Publication Date
Sep 12, 2013
Accession Number
AD1063542

Entities

People

  • Hermann Uys
  • Jarrah Sastrawan
  • Michael J. Biercuk
  • Todd J. Green

Organizations

  • University of Sydney

Tags

Communities of Interest

  • Energy and Power Technologies
  • Materials and Manufacturing Processes

DTIC Thesaurus Topics

  • Computer Programs
  • Cross Correlation
  • Crystal Structure
  • Frequency
  • Frequency Domain
  • Gaussian Noise
  • Information Processing
  • Intelligence Community (United States)
  • Physics
  • Power Spectra
  • Quantum Bits
  • Quantum Computing
  • Quantum Information
  • Quantum Memories
  • Reliability
  • Simulations
  • Time Intervals

Fields of Study

  • Physics

Readers

  • Adaptive Control and Estimation with Uncertainty in Dynamic Systems.
  • Computational Modeling and Simulation
  • Quantum Dot Semiconductor Device Photonics and Graphene Optoelectronic Materials and THz Physics.

Technology Areas

  • Quantum Computing
  • Quantum Science - Quantum Dots