Title :
Distributed Circuit Model for Multi-Color Light-Actuated Opto-Electrowetting Microfluidic Device
Author :
Shao Ning Pei ; Valley, Justin K. ; Yi-Lun Wang ; Wu, Ming C.
Author_Institution :
Dept. of Electr. Eng. & Comput. Sci., Univ. of California, Berkeley, Berkeley, CA, USA
Abstract :
We report on a distributed circuit model for multi-color light-actuated optoelectrowetting devices. The model takes into consideration the large variation of absorption coefficient (15×) of photoconductors in the visible spectrum and the nonuniform distribution of photogenerated carriers. With the help of this model, we designed opto-electrowetting devices with optimum thickness of photoconductors. This leads to significant improvement in performance compared with prior reports, including 200× lower optical power, 5× lower voltage, and 20× faster droplet moving speed. This enables the use of commercial projectors to create on-demand “virtual” electrodes for large-scale parallel manipulation of droplets. We have achieved simultaneous manipulation of 96-droplet array. Finally, we have demonstrated parallel on chip detection of Herpes Simplex Virus Type 1 within 45 min using a real-time isothermal polymerase chain reaction assay.
Keywords :
absorption coefficients; bioMEMS; biochemistry; drops; enzymes; integrated optics; integrated optoelectronics; micro-optomechanical devices; microfluidics; microorganisms; molecular biophysics; photoconducting materials; 96-droplet array; Herpes Simplex Virus Type 1; absorption coefficient; distributed circuit model; droplet manipulation; large-scale parallel manipulation; multi-color light-actuated opto-electrowetting microfluidic device; optical power; optimum thickness; parallel on-chip detection; photoconductors; photogenerated carriers; real-time isothermal polymerase chain reaction assay; virtual electrodes; visible spectrum; Color; Dielectrics; Electrodes; Force; Integrated circuit modeling; Microfluidics; Photoconducting materials; Droplet microfluidics; electrowetting; light-actuated digital microfluidics; optoelectrowetting; polymerase chain reaction (PCR);
Journal_Title :
Lightwave Technology, Journal of
DOI :
10.1109/JLT.2015.2405076