Tagger Microscope

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 +[[Image:TaggerMicFull_persp.png|thumb|317px|View of the tagger microscope from under the electron beam plane, with chamber walls removed]]
 +
          ''[http://zeus.phys.uconn.edu/wiki/index.php/Tagger_microscope_prototype_construction Main page: Tagger Microscope Contruction (UConn Wiki)]''           ''[http://zeus.phys.uconn.edu/wiki/index.php/Tagger_microscope_prototype_construction Main page: Tagger Microscope Contruction (UConn Wiki)]''
The '''Tagger Microscope''' is a movable, high-resolution hodoscope that counts post- bremsstrahlung electrons corresponding to the photon energy band of interest to the experiment in Hall D. While designed as a general-use device, it has been optimized primarily for use in the GlueX experiment, covering the E<sub>&gamma;</sub> range of 8.4-9&nbsp;GeV (E<sub>e</sub> 3-3.6&nbsp;GeV) The '''Tagger Microscope''' is a movable, high-resolution hodoscope that counts post- bremsstrahlung electrons corresponding to the photon energy band of interest to the experiment in Hall D. While designed as a general-use device, it has been optimized primarily for use in the GlueX experiment, covering the E<sub>&gamma;</sub> range of 8.4-9&nbsp;GeV (E<sub>e</sub> 3-3.6&nbsp;GeV)
 +The design of the Tagger Microscope calls for the spectrally-analyzed electron focal plane to be instrumented with a detector array of scintillating fibers with axes oriented ''toward'' the oncoming electrons. This is done to maintain fine focal plane segmentation in two dimensions:
 +* fine segmentation along the direction of electrons spread mitigates the rate and increases the energy resolution
 +* segmentation in the y-directions allows selective readout to match the photon collimator acceptance.
-[[Image:TaggerMicFull_persp.png|thumb|317px|View of the tagger microscope from under the electron beam plane, with chamber walls removed]]+To avoid placing photo-sensors along the path of the electronics, the scintillation light will be delivered to separately-mounted sensors and electronics via clear fiber waveguides.
[[Image:ElectronicsAssy_rend.jpg|thumb|250px|Rendering of the silicon photomultiplier-based scintillating fiber readout electronics.]] [[Image:ElectronicsAssy_rend.jpg|thumb|250px|Rendering of the silicon photomultiplier-based scintillating fiber readout electronics.]]

Revision as of 00:26, 8 November 2009

View of the tagger microscope from under the electron beam plane, with chamber walls removed
Enlarge
View of the tagger microscope from under the electron beam plane, with chamber walls removed

          Main page: Tagger Microscope Contruction (UConn Wiki)

The Tagger Microscope is a movable, high-resolution hodoscope that counts post- bremsstrahlung electrons corresponding to the photon energy band of interest to the experiment in Hall D. While designed as a general-use device, it has been optimized primarily for use in the GlueX experiment, covering the Eγ range of 8.4-9 GeV (Ee 3-3.6 GeV)

The design of the Tagger Microscope calls for the spectrally-analyzed electron focal plane to be instrumented with a detector array of scintillating fibers with axes oriented toward the oncoming electrons. This is done to maintain fine focal plane segmentation in two dimensions:

  • fine segmentation along the direction of electrons spread mitigates the rate and increases the energy resolution
  • segmentation in the y-directions allows selective readout to match the photon collimator acceptance.

To avoid placing photo-sensors along the path of the electronics, the scintillation light will be delivered to separately-mounted sensors and electronics via clear fiber waveguides.

Rendering of the silicon photomultiplier-based scintillating fiber readout electronics.
Enlarge
Rendering of the silicon photomultiplier-based scintillating fiber readout electronics.