DocumentCode :
3601861
Title :
Development of Silicon Probe With Acute Study on In Vivo Neural Recording and Implantation Behavior Monitored by Integrated Si-Nanowire Strain Sensors
Author :
Songsong Zhang ; Shih-Cheng Yen ; Zhuolin Xiang ; Lun-De Liao ; Dim-Lee Kwong ; Chengkuo Lee
Author_Institution :
Dept. of Electr. & Comput. Eng., Nat. Univ. of Singapore, Singapore, Singapore
Volume :
24
Issue :
5
fYear :
2015
Firstpage :
1303
Lastpage :
1313
Abstract :
The silicon probe with highly P-doped Si electrodes was realized on 8-in Silicon on insulator wafer through standard Complementary metal-oxide semiconductor process. By leveraging the same thin Si device layer (~100 nm), the built-in piezoresistive Si-nanowires (SiNWs) configured in full-bridge structure were also equipped along the probe shank for strain sensing. After additional coatings of nanocomposite (Carbon nanotubes + Au nanoparticles) on silicon electrodes, the functionality of neural recording was validated with a low noise level (<;20 μV) during in vivo neural recording on rat brain (CA1 region). The additional capability of monitoring probe mechanical behavior was first verified through the probe buckling experiments and further examined with implantations on rat brain (S1 region). Besides the large buckling mechanics, the physiological brain micromotion (e.g., caused by respiration) was successfully picked up by integrated SiNWs strain sensors, which would provide the research platform to practically understand the correlation between the electrical neural signal and the brain micromotion.
Keywords :
bioelectric potentials; biomechanics; biomedical electrodes; brain; buckling; carbon nanotubes; gold; nanocomposites; nanomedicine; nanowires; neurophysiology; silicon; silicon-on-insulator; strain sensors; buckling mechanics; built-in piezoresistive silicon-nanowires; carbon nanotubes; complementary metal-oxide semiconductor process; electrical neural signal; gold nanoparticles; highly phosphorus-doped silicon electrodes; integrated silicon-nanowire strain sensors; nanocomposite coatings; physiological brain micromotion; rat brain micromotion; silicon-on-insulator wafer; Electrodes; Fabrication; Probes; Sensors; Silicon; Strain; Surface treatment; Silicon neural probe; brain micro-motion; brain micro-motion.; nano-composite; neural recording; silicon nanowires (SiNWs);
fLanguage :
English
Journal_Title :
Microelectromechanical Systems, Journal of
Publisher :
ieee
ISSN :
1057-7157
Type :
jour
DOI :
10.1109/JMEMS.2015.2417678
Filename :
7085995
Link To Document :
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