• DocumentCode
    819922
  • Title

    The measurement of sub-Brownian lever deflections

  • Author

    Hammig, Mark D. ; Wehe, David K. ; Nees, John A.

  • Author_Institution
    Dept. of Nucl. Eng. & Radiol. Sci., Univ. of Michigan, Ann Arbor, MI
  • Volume
    52
  • Issue
    6
  • fYear
    2005
  • Firstpage
    3005
  • Lastpage
    3011
  • Abstract
    A micromechanical lever that deflects in response to the impacts of charged particles has previously been proposed as a means of improving upon the capabilities of existing radiation detection technology. The momentum detector offers promise as a highly discriminating, high-resolution tool for ion sensing. Advances required to successfully realize a spectroscopic capability has been completed; specifically, techniques for reproducibly fabricating micromechanical structures have been optimized, and an instrument that measures miniscule deflections has been developed. Even absent substantial refinement efforts, the novel coupled-cavity optical detector can resolve lever motions on the order of 1-10 picometers. A method by which the Brownian motion of the lever can be stilled has been proven which elicits reductions sufficient to measure heavy-ion impact, the deflections from which may be several orders of magnitude below the thermal vibration amplitude. Using active forcing techniques, the Brownian vibration of the microlevers has been reduced from room temperature (288 K) to sub-Kelvin temperatures, for levers vibrating in air. The mechanical factors that limit the noise reduction magnitude are discussed and methods of surmounting those limitations are identified
  • Keywords
    Brownian motion; cantilevers; micromechanical resonators; microsensors; optical sensors; vibrations; Brownian motion; Brownian vibration; active forcing techniques; charged particles; coupled-cavity optical detector; heavy-ion impact; high-resolution tool; ion sensing; lever motions; micromechanical lever; micromechanical structures; microresonators; miniscule deflections; momentum detector; noise reduction magnitude; optimization; radiation detection technology; subBrownian lever deflection measurements; temperature control; thermal vibration amplitude; Instruments; Mechanical factors; Micromechanical devices; Motion measurement; Optical coupling; Optical detectors; Radiation detectors; Spectroscopy; Temperature; Vibration measurement; Microresonators; radiation detectors; stochastic processes; temperature control;
  • fLanguage
    English
  • Journal_Title
    Nuclear Science, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9499
  • Type

    jour

  • DOI
    10.1109/TNS.2005.860827
  • Filename
    1589313