Development of a stimuli-responsive polymer nanocomposite toward biologically optimized, MEMS-based neural probes

被引:71
作者
Hess, A. E. [1 ]
Capadona, J. R. [2 ,3 ]
Shanmuganathan, K. [4 ]
Hsu, L. [4 ]
Rowan, S. J. [3 ,4 ]
Weder, C. [5 ,6 ]
Tyler, D. J. [2 ,3 ]
Zorman, C. A. [1 ]
机构
[1] Case Western Reserve Univ, Dept Elect Engn & Comp Sci, Cleveland, OH 44106 USA
[2] Louis Stokes Cleveland VA Med Ctr, Rehabil R&D, Cleveland, OH USA
[3] Case Western Reserve Univ, Dept Biomed Engn, Cleveland, OH 44106 USA
[4] Case Western Reserve Univ, Dept Macromol Sci & Engn, Cleveland, OH 44106 USA
[5] Univ Fribourg, Adolphe Merkle Inst, CH-1700 Fribourg, Switzerland
[6] Univ Fribourg, Fribourg Ctr Nanomat, CH-1700 Fribourg, Switzerland
关键词
STRESS-TRANSFER; BRAIN-TISSUE; MICROELECTRODES;
D O I
10.1088/0960-1317/21/5/054009
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
This paper reports the development of micromachining processes and mechanical evaluation of a stimuli-responsive, mechanically dynamic polymer nanocomposite for biomedical microsystems. This nanocomposite consists of a cellulose nanofiber network encased in a polyvinyl acetate matrix. Micromachined tensile testing structures fabricated from the nanocomposite displayed a reversible and switchable stiffness comparable to bulk samples, with a Young's modulus of 3420 MPa when dry, reducing to similar to 20 MPa when wet, and a stiff-to-flexible transition time of similar to 300 s. This mechanically dynamic behavior is particularly attractive for the development of adaptive intracortical probes that are sufficiently stiff to insert into the brain without buckling, but become highly compliant upon insertion. Along these lines, a micromachined neural probe incorporating parylene insulating/moisture barrier layers and Ti/Au electrodes was fabricated from the nanocomposite using a fabrication process designed specifically for this chemical- and temperature-sensitive material. It was found that the parylene layers only slightly increased the stiffness of the probe in the wet state in spite of its much higher Young's modulus. Furthermore, the Ti/Au electrodes exhibited impedance comparable to Au electrodes on conventional substrates. Swelling of the nanocomposite was highly anisotropic favoring the thickness dimension by a factor of 8 to 12, leading to excellent adhesion between the nanocomposite and parylene layers and no discernable deformation of the probes when deployed in deionized water.
引用
收藏
页数:9
相关论文
共 29 条
[1]   Development and modeling of electrically triggered hydrogels for microfluidic applications [J].
Bassetti, MJ ;
Chatterjee, AN ;
Aluru, NR ;
Beebe, DJ .
JOURNAL OF MICROELECTROMECHANICAL SYSTEMS, 2005, 14 (05) :1198-1207
[2]   Stimuli-responsive polymer nanocomposites inspired by the sea cucumber dermis [J].
Capadona, Jeffrey R. ;
Shanmuganathan, Kadhiravan ;
Tyler, Dustin J. ;
Rowan, Stuart J. ;
Weder, Christoph .
SCIENCE, 2008, 319 (5868) :1370-1374
[3]  
*DUPONT, 2006, DPONT KAPT HN POL FI
[4]  
Khoshgoftar Mehdi, 2007, American Journal of Applied Sciences, V4, P918, DOI 10.3844/ajassp.2007.918.924
[5]   Biomechanical analysis of silicon microelectrode-induced strain in the brain [J].
Lee, Hyunjung ;
Bellamkonda, Ravi V. ;
Sun, Wei ;
Levenston, Marc E. .
JOURNAL OF NEURAL ENGINEERING, 2005, 2 (04) :81-89
[6]   Polyimide-based intracortical neural implant with improved structural stiffness [J].
Lee, KK ;
He, JP ;
Singh, A ;
Massia, S ;
Ehteshami, G ;
Kim, B ;
Raupp, G .
JOURNAL OF MICROMECHANICS AND MICROENGINEERING, 2004, 14 (01) :32-37
[7]   Flexible polyimide probes with microelectrodes and embedded microfluidic channels for simultaneous drug delivery and multi-channel monitoring of bioelectric activity [J].
Metz, S ;
Bertsch, A ;
Bertrand, D ;
Renaud, P .
BIOSENSORS & BIOELECTRONICS, 2004, 19 (10) :1309-1318
[8]   Polyimide-based microfluidic devices [J].
Metz, S ;
Holzer, R ;
Renaud, P .
LAB ON A CHIP, 2001, 1 (01) :29-34
[9]   EFFECTS OF IONIC ENVIRONMENT ON VISCOSITY OF TRITON-EXTRACTED CATCH CONNECTIVE-TISSUE OF A SEA-CUCUMBER BODY-WALL [J].
MOTOKAWA, T .
COMPARATIVE BIOCHEMISTRY AND PHYSIOLOGY B-BIOCHEMISTRY & MOLECULAR BIOLOGY, 1994, 109 (04) :613-622
[10]   STRENGTH CHARACTERIZATION OF SILICON MICROPROBES IN NEUROPHYSIOLOGICAL TISSUES [J].
NAJAFI, K ;
HETKE, JF .
IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING, 1990, 37 (05) :474-481