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The Q_weak Experimental Apparatus

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arxiv 1409.7100 v2 pith:FQAPN36O submitted 2014-09-24 physics.ins-det nucl-exphysics.acc-ph

Qweak Collaboration:T. Allison , M. Anderson , D. Androic , D.S. Armstrong , A. Asaturyan , T.D. Averett , R. Averill , J. Balewski
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This is my paper · ORCID
classification physics.ins-detnucl-exphysics.acc-ph
keywords beamwereelectronselectronexperimenttargetweakapparatus
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abstract

The Jefferson Lab Q_weak experiment determined the weak charge of the proton by measuring the parity-violating elastic scattering asymmetry of longitudinally polarized electrons from an unpolarized liquid hydrogen target at small momentum transfer. A custom apparatus was designed for this experiment to meet the technical challenges presented by the smallest and most precise ${\vec{e}}$p asymmetry ever measured. Technical milestones were achieved at Jefferson Lab in target power, beam current, beam helicity reversal rate, polarimetry, detected rates, and control of helicity-correlated beam properties. The experiment employed 180 microA of 89% longitudinally polarized electrons whose helicity was reversed 960 times per second. The electrons were accelerated to 1.16 GeV and directed to a beamline with extensive instrumentation to measure helicity-correlated beam properties that can induce false asymmetries. Moller and Compton polarimetry were used to measure the electron beam polarization to better than 1%. The electron beam was incident on a 34.4 cm liquid hydrogen target. After passing through a triple collimator system, scattered electrons between 5.8 degrees and 11.6 degrees were bent in the toroidal magnetic field of a resistive copper-coil magnet. The electrons inside this acceptance were focused onto eight fused silica Cerenkov detectors arrayed symmetrically around the beam axis. A total scattered electron rate of about 7 GHz was incident on the detector array. The detectors were read out in integrating mode by custom-built low-noise pre-amplifiers and 18-bit sampling ADC modules. The momentum transfer Q^2 = 0.025 GeV^2 was determined using dedicated low-current (~100 pA) measurements with a set of drift chambers before (and a set of drift chambers and trigger scintillation counters after) the toroidal magnet.

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  1. Higher order electroweak radiative corrections in lepton-proton scattering using covariant approach

    hep-ph 2025-07 conditional novelty 6.0 of 10

    The authors compute one-loop, quadratic, and reducible two-loop electroweak corrections to the parity-violating asymmetry in elastic lepton-proton scattering and find percent-level NNLO effects at the kinematics of se...

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