4.6 Article

Portable Automatic Microring Resonator System Using a Subwavelength Grating Metamaterial Waveguide for High-Sensitivity Real-Time Optical-Biosensing Applications

期刊

IEEE TRANSACTIONS ON BIOMEDICAL ENGINEERING
卷 68, 期 6, 页码 1894-1902

出版社

IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
DOI: 10.1109/TBME.2020.3029148

关键词

Optical waveguides; Optical resonators; Biosensors; Sensitivity; Microfluidics; Biomedical optical imaging; Optical sensors; Subwavelength grating metamaterial; microring resonator; optical biosensor; microfluidic channel

资金

  1. NASA STTR program [80NSSC18P2009]
  2. US Department of Energy SBIR program [DE SC-0013178]
  3. AFOSR MURI program [FA9550-08-1-0394]
  4. National Science Foundation [NSF-1711824]
  5. National Cancer Institute/National Institutes of Health (NCI/NIH) [1R43HG009113-01A1]
  6. Ministry of Science and Technology, Taiwan, ROC [1052911-I-110-512, 106-2911-I-110-503, 108-2320-B-110 -004]
  7. National Natural Science Foundation of China [61634006, 61372038]
  8. Fund of Joint Laboratory for Undersea Optical Networks, China Scholarship Council [201806470008]

向作者/读者索取更多资源

This study presented a fully automatic portable biosensing system based on microring resonator, which achieves highly sensitive biomolecular detection through techniques such as microfluidic pump and grating coupler. It can be widely utilized in fields including heavy metal detection, gas sensing, virus examination, and cancer marker diagnosis.
The slow light sensor techniques have been applied to bio-related detection in the past decades. However, similar testing-systems are too large to carry to a remote area for diagnosis or point-of-care testing. This study demonstrated a fully automatic portable biosensing system based on the microring resonator. An optical-fiber array mounted on a controller based micro-positioning system, which can be interfaced with MATLAB to locate a tentative position for light source and waveguide coupling alignment. Chip adapter and microfluidic channel could be packaged as a product such that it is cheap to be manufactured and can be disposed of after every test conducted. Thus, the platform can be more easily operated via an ordinary user without expertise in photonics. It is designed based on conventional optical communication wavelength range. The C-band superluminescent-light-emitting-diode light source couples in/out the microring sensor to obtain quasi-TE mode by grating coupler techniques. For keeping a stable chemical binding reaction, the cost-effective microfluidic pump was developed to offer a specific flow rate of 20 mu L/min by using a servo-motor, an Arduino board, and a motor driver. The subwavelength grating metamaterial ring resonator shows highly sensitive sensing performance via surface index changes due to biomarker adhered on the sensor. The real-time peak-shift monitoring shows 10 mu g/mL streptavidin detection of limit based on the biotin-streptavidin binding reaction. Through the different specific receptors immobilized on the sensor surface, the system can be utilized on the open applications such as heavy metal detection, gas sensing, virus examination, and cancer marker diagnosis.

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