Design of a millimeter-wave full-Stokes polarimeter utilizing optical up-conversion
John P. Wilson, Christopher A. Schuetz, Richard D. Martin, Thomas E. Dillon, Peng Yao, Dennis W. Prather
Abstract
John P. Wilson, Christopher A. Schuetz, Richard D. Martin, Thomas E. Dillon, Peng Yao, Dennis W. Prather
Abstract
The polarization properties of radiation can contain additional information beyond what is available with only an intensity measurement. A full-Stokes polarimeter is capable of measuring the four Stokes parameters which completely characterizes the polarization of detected radiation. A division of time full-Stokes polarimeter often uses a rotating polarizing element to measure all four Stokes parameters and this rotation can introduce artifacts due to wobbling. In this paper a system is proposed which uses an electrically controlled phase bias instead of a rotating element to create a full-Stokes polarimeter for a millimeter-wave system which utilizes optical up-conversion.
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The polarization properties of radiation can contain additional information beyond what is available with only an intensity measurement. A full-Stokes polarimeter is capable of measuring the four Stokes parameters which completely characterizes the polarization of detected radiation. A division of time full-Stokes polarimeter often uses a rotating polarizing element to measure all four Stokes parameters and this rotation can introduce artifacts due to wobbling. In this paper a system is proposed which uses an electrically controlled phase bias instead of a rotating element to create a full-Stokes polarimeter for a millimeter-wave system which utilizes optical up-conversion.
Key concepts: Polarimeter, Stokes parameters, Polarization (electrochemistry), Physics, Optics, Millimeter, Extremely high frequency, Polarimetry