Title :
A vertically integrated nanoscale tipped microprobe intracellular electrode array
Author :
Kubota, Yuko ; Oi, H. ; Sawahata, Hirohito ; Goryu, Akihiro ; Ando, Y. ; Numano, Rika ; Ishida, Makoto ; Kawano, T.
Author_Institution :
Dept. of Electr. & Electron. Inf. Eng., Toyohashi Univ. of Technol., Toyohashi, Japan
Abstract :
Here we report integration of nanoscale tipped 120-μm-long vertical microprobe electrode (NTE) array and intracellular recordings using a gastrocnemius muscle of a mouse. The tip diameter and curvature radius of the NTE was <; 200 nm, respectively, and the controlled height of the exposed tip section was 4 μm. The impedance of the fabricated NTE exhibited 3.1 MΩ at 1 kHz in saline, with the output/input signal amplitude ratio of 50%. The penetrated NTE into the muscle of a mouse detected the resting membrane potentials with the amplitude of ~ -200 mV, indicating that the NTE device detected intracellular signals from the mouse´s muscle. Although we have demonstrated the intracellular recording capability using a muscle, such nanoscale electrodes with a high aspect ratio can be used for multisite intracellular recordings within numerous neuronal tissues including brain slice.
Keywords :
bioelectric potentials; biomembrane transport; brain; microelectrodes; muscle; nanomedicine; nanosensors; neural nets; MO; NTE curvature radius; NTE device; NTE tip diameter; brain slice; controlled height; exposed tip section; frequency 1 kHz; gastrocnemius muscle; high aspect ratio; intracellular recording capability; intracellular signals; mouse muscle; multisite intracellular recordings; neuronal tissues; output/input signal amplitude ratio; penetrated NTE; resting membrane potential; saline; size 120 mum; size 4 mum; vertically integrated nanoscale tipped microprobe intracellular electrode array; Arrays; Electrodes; Impedance; Muscles; Nanobioscience; Nanoscale devices; Silicon;
Conference_Titel :
Micro Electro Mechanical Systems (MEMS), 2014 IEEE 27th International Conference on
Conference_Location :
San Francisco, CA
DOI :
10.1109/MEMSYS.2014.6765597