Title :
A power-free surface-tension-driven fluidic network system for large-array enzyme immobilization and glucose sensing
Author :
Tseng, Fan-Gang ; Lin, Kuang-Hua ; Hsu, Hui-Ting ; Chang, Yu-Hsiang ; Chieng, Ching-Chang
Author_Institution :
ESS Dept., Nat. Tsing Hua Univ., Hsinchu, Taiwan
Abstract :
A novel fluidic network system for batch enzyme-immobilization and glucose sensing has been proposed in this paper. This fluidic network comprises an enzyme chip for sensor and enzyme accommodation, and a fluid chip for blood sample introduction. Polymer-MEMS technologies, including SU-8 lithography and PDMS molding, have been employed for the chip fabrication. Oxygen-plasma treatment is utilized to provide channel surface hydrophilic property, which is the key for fluids driven passively without external power sources. Operated by simple sample drop-in and withdraw process, enzyme deposition can be precisely controlled in both position and amount. The dose uniformity of the enzyme deposition, better than ±10% in each sensor compartment, has been achieved by employing a H-shaped fluidic system. Functional glucose-sensor-response of 5.42 nA/mM. with minimum sensible signal of 8 mM has also been demonstrated in this study.
Keywords :
biosensors; blood; microfluidics; microsensors; photolithography; proteins; surface tension; O-plasma treatment; PDMS molding; SU-8 lithography; blood sample introduction; dose uniformity; fluid chip; glucose sensing; large-array enzyme immobilization; polymer-MEMS technologies; power-free surface-tension-driven fluidic network system; sample drop-in and withdraw process; Biochemistry; Blood; Chip scale packaging; Electronic switching systems; Lithography; Polymers; Reservoirs; Sugar; Surface tension; Visualization;
Conference_Titel :
Micro Electro Mechanical Systems, 2003. MEMS-03 Kyoto. IEEE The Sixteenth Annual International Conference on
Print_ISBN :
0-7803-7744-3
DOI :
10.1109/MEMSYS.2003.1189775