Title :
Microscale Characterization of a Mechanically Adaptive Polymer Nanocomposite With Cotton-Derived Cellulose Nanocrystals for Implantable BioMEMS
Author :
Hess-Dunning, A.E. ; Tyler, D.J. ; Harris, James P. ; Capadona, Jeffrey R. ; Weder, Christoph ; Rowan, Stuart J. ; Zorman, C.A.
Author_Institution :
Adv. Platform Technol. Center, Louis Stokes Cleveland Veterans Affairs Med. Center, Cleveland, OH, USA
Abstract :
A mechanically adaptive polymer nanocomposite for use as a structural material for microelectromechanical system (MEMS)-based penetrating implantable biosensors, particularly for the brain, is presented as a solution to the limited clinical implementation of such sensors. Micromechanical testing of MEMS-scale test structures was used to determine the Young´s moduli of the polymer nanocomposite in both its dry rigid state (E = 2414 MPa) and its wet compliant state (E = 4.9 MPa), as well as the rate of mechanical switching upon immersion in an aqueous solution. The softening of the composite materials after implantation in the cortex of a Sprague-Dawley rat was studied by ex vivo environmentally controlled microtensile testing. A microfabrication process for producing metallized neural probes for recording of electrical signals was also developed. The results support the mechanically adaptive nanocomposite as a viable option for MEMS-based penetrating implantable biosensors.
Keywords :
Young´s modulus; bioMEMS; bioelectric potentials; biomedical measurement; biosensors; brain; microfabrication; microsensors; nanocomposites; nanomedicine; polymer films; prosthetics; tensile testing; MEMS-based penetrating implantable biosensors; MEMS-scale test structures; Young´s moduli; aqueous solution; brain; clinical implementation; composite material softening; cortex; cotton-derived cellulose nanocrystals; dry rigid state; electrical signal recording; ex vivo environmentally controlled microtensile testing; implantable BioMEMS; implantation; mechanical switching; mechanically adaptive nanocomposite; mechanically adaptive polymer nanocomposite; metallized neural probes; microelectromechanical system-based penetrating implantable biosensors; microfabrication; micromechanical testing; microscale characterization; structural material; wet compliant state; Laser beams; Polymers; Sensors; Strain; Testing; Young´s modulus; Implantable biomedical devices; materials testing; nanocomposites; neural microtechnology; neural prosthesis; polymer films; polymer films.;
Journal_Title :
Microelectromechanical Systems, Journal of
DOI :
10.1109/JMEMS.2014.2327035