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Magnetotactic bacteria as controlled components in microelectronic circuits.

. ICECS, page 1. IEEE, (2007)

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Sub-micrometer Network Fabrication for Bacterial Carriers and Electrical Signal Transmission., , and . NanoNet, volume 20 of Lecture Notes of the Institute for Computer Sciences, Social Informatics and Telecommunications Engineering, page 46-50. Springer, (2009)Guest Editorial: Special Issue on Nanorobotics., and . IEEE Trans. Robotics, 30 (1): 1-2 (2014)Fundamental Principles and Issues of High-speed Piezoactuated Three-legged Motion for Miniature Robots Designed for Nanometer-scale Operations.. Int. J. Robotics Res., 24 (7): 575-588 (2005)Towards swarms of communication-enabled and intelligent sensotaxis-based bacterial microrobots capable of collective tasks in an aqueous medium., , , , and . ICRA, page 2617-2622. IEEE, (2009)Dipole Field Navigation for targeted drug delivery., and . BioRob, page 320-325. IEEE, (2014)Tumor targeting by computer controlled guidance of Magnetotactic Bacteria acting like autonomous microrobots., , , and . IROS, page 1304-1308. IEEE, (2011)Dipole field controlled micro- and nanomanipulation., and . CASE, page 1601-1607. IEEE, (2015)Magnetic Fringe Field Navigation of a guidewire based on Thin Plate Spline modeling., , and . CASE, page 567-572. IEEE, (2016)Magnetotactic bacteria as controlled components in microelectronic circuits.. ICECS, page 1. IEEE, (2007)Bidimensional MRI-based Navigation System Using a PID Controller., , and . EMBC, page 4424-4427. IEEE, (2006)