DocumentCode :
6187
Title :
Application of Flexible OLED Display Technology for Electro-Optical Stimulation and/or Silencing of Neural Activity
Author :
Smith, Joseph T. ; O´Brien, Bill ; Yong-Kyun Lee ; Bawolek, Edward J. ; Christen, Jennifer Blain
Author_Institution :
Flexible Display Center, Arizona State Univ., Tempe, AZ, USA
Volume :
10
Issue :
6
fYear :
2014
fDate :
Jun-14
Firstpage :
514
Lastpage :
520
Abstract :
This paper presents a new biophotonic application for large-area, high-resolution, flexible organic light-emitting diode (OLED) display technology currently used to manufacture low-cost color flexible displays on plastic substrates. The new concept uses a fully addressable high resolution flexible OLED pixel array on a thin, mechanically compliant biocompatible plastic substrate to selectively stimulate and/or silence small groups of neurons on either the cortical surface or, alternatively, within the deep brain. Optical measurements from a 455 nm blue flexible OLED test structure demonstrated the ability to emit 1 mW/mm2 of instantaneous light intensity using a 13 V, 20 Hz pulse, which meets the minimum reported intensity at ~ 450 nm to induce optical stimulation in genetically modified neural tissue. Biocompatibility was successfully demonstrated by the ability to grow human epithelial cells on the surface of a full TFT process flow plastic flexible display substrate. Additionally, a new active matrix array display architecture was designed to support pulsed mode OLED operation. These preliminary results demonstrate the initial viability of extending flexible plastic substrate OLED display technology to the development of large-area, high-resolution emissive active matrix arrays for chronic optogenetic applications.
Keywords :
bio-optics; bioelectric potentials; biological tissues; biomedical electronics; biomedical equipment; biomedical measurement; cellular biophysics; design; electro-optical devices; electro-optical effects; flexible displays; genetic engineering; neurophysiology; organic light emitting diodes; plastics; radiation therapy; substrates; thin film transistors; active matrix array display architecture design; biocompatibility; biophotonic application; blue flexible OLED test structure; chronic optogenetic applications; cortical surface; deep brain; electro-optical stimulation; emissive active matrix arrays; flexible OLED display technology application; flexible organic light-emitting diode display technology; flexible plastic substrate OLED display technology; frequency 20 Hz; full TFT process flow plastic flexible display substrate; genetically modified neural tissue; high resolution flexible OLED pixel array; high-resolution OLED display technology; human epithelial cell growth; instantaneous light intensity; large-area OLED display technology; low-cost color flexible display manufacturing; mechanically compliant biocompatible plastic substrate; neural activity silencing; optical measurements; plastic substrates; pulsed mode OLED operation; selective neuron stimulation; small neuron group silencing; thin biocompatible plastic substrate; voltage 13 V; wavelength 455 nm; Arrays; Organic light emitting diodes; Plastics; Stimulated emission; Substrates; Thin film transistors; Flexible electronics; optogenetics; organic light emitting diodes (OLEDs); thin-film transistors (TFTs);
fLanguage :
English
Journal_Title :
Display Technology, Journal of
Publisher :
ieee
ISSN :
1551-319X
Type :
jour
DOI :
10.1109/JDT.2014.2308436
Filename :
6748913
Link To Document :
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