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Novel high-resolution sidewall imaging using standard Atomic Force Microscopy equipment: Exceeding surface scanning using customized FIB-milled AFM tips in torsional feedback mode.

, and . ICST, page 608-611. IEEE, (2013)

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Combined nanorobotic AFM/SEM system as novel toolbox for automated hybrid analysis and manipulation of nanoscale objects., , , , and . ICRA, page 4088-4093. IEEE, (2010)Computer Aided Planning System of a Flexible Microrobot-Based Microassembly Station., , and . EUROCAST, volume 1798 of Lecture Notes in Computer Science, page 414-434. Springer, (1999)Nanorobotic Testing to Assess the Stiffness Properties of Nanopaper., , , , and . IEEE Trans. Robotics, 30 (1): 115-119 (2014)Robotic nanowire handling for prototypic NEMS devices., and . ICRA, page 1421-1426. IEEE, (2013)Intelligent robot hand control system using a tailorable parallel computer concept., , and . IROS, page 216-223. IEEE, (1994)Nanorobotic transfer and characterization of graphene flakes., , and . IROS, page 640-645. IEEE, (2012)Novel high-resolution sidewall imaging using standard Atomic Force Microscopy equipment: Exceeding surface scanning using customized FIB-milled AFM tips in torsional feedback mode., and . ICST, page 608-611. IEEE, (2013)Control system for the automatic handling of biological cells with mobile microrobots., , and . ACC, page 3986-3991. IEEE, (2004)Microassembly Planning for Manufacturing by Flexible Microrobots., and . ICRA, page 3362-3367. IEEE Computer Society, (1998)Planning of a Microassembly Task in a Flexible Microrobot Cell., , and . ICRA, page 1121-1126. IEEE, (2000)