• DocumentCode
    947745
  • Title

    Minimizing Scanning Errors in Piezoelectric Stack-Actuated Nanopositioning Platforms

  • Author

    Aphale, Sumeet S. ; Bhikkaji, Bharath ; Moheimani, S. O Reza

  • Volume
    7
  • Issue
    1
  • fYear
    2008
  • Firstpage
    79
  • Lastpage
    90
  • Abstract
    Piezoelectric stack-actuated parallel-kinematic nanopositioning platforms are widely used in nanopositioning applications. These platforms have a dominant first resonant mode at relatively low frequencies, typically in the hundreds of hertz. Furthermore, piezoelectric stacks used for actuation have inherent nonlinearities such as hysteresis and creep. These problems result in a typically low-grade positioning performance. Closed-loop control algorithms have shown the potential to eliminate these problems and achieve robust, repeatable nanopositioning. Using closed-loop noise profile as a performance criterion, three commonly used damping controllers, positive position feedback, polynomial-based pole placement, and resonant control are compared for their suitability in nanopositioning applications. The polynomial-based pole placement controller is chosen as the most suitable of the three. Consequently, the polynomial-based control design to damp the resonant mode of the platform is combined with an integrator to produce raster scans of large areas. A scanning resolution of approximately 8 nm, over a 100 mum times 100 mum area is achieved.
  • Keywords
    closed loop systems; control system synthesis; nanopositioning; piezoelectric actuators; pole assignment; closed-loop control algorithms; closed-loop noise profile; creep; hysteresis; integrator; piezoelectric stack-actuated parallel-kinematic nanopositioning platforms; polynomial-based control; polynomial-based pole placement controller; positive position feedback; resonant mode; scanning errors; Feedback control; Nanopositioning; feedback control; nanopositioning; resonance damping; tracking;
  • fLanguage
    English
  • Journal_Title
    Nanotechnology, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    1536-125X
  • Type

    jour

  • DOI
    10.1109/TNANO.2007.910333
  • Filename
    4359143