| Literature DB >> 32168963 |
Yang Li1,2, Zhao Yao3, Wenjing Yue1,2, Chunwei Zhang1,2, Song Gao1,2, Cong Wang4.
Abstract
The increase in the number of people suffering diabetes has been the driving force behind the development of glucose sensors to overcome the current testing shortcomings. In this work, a reusable, non-invasive and ultrafast radio frequency biosensor based on optimized integrated passive device fabrication process for quantitative detection of glucose level was developed. With the aid of the novel biosensor design with hammer-shaped capacitors for carrying out detection, both the resonance frequency and magnitude of reflection coefficient can be applied to map the different glucose levels. Meanwhile, the corresponding fabrication process was developed, providing an approach for achieving quantitative detection and a structure without metal-insulator-metal type capacitor that realizes low cost and high reliability. To enhance the sensitivity of biosensor, a 3-min dry etching treatment based on chlorine/argon-based plasma was implemented for realizing hydrophilicity of capacitor surface to ensure that the biosensor can be touched rapidly with glucose. Based on above implementation, a non-invasive biosensor having an ultrafast response time of superior to 0.85 s, ultralow LOD of 8.01 mg/dL and excellent reusability verified through five sets of measurements are realized. The proposed approaches are not limited the development of a stable and accurate platform for the detection of glucose levels but also presents a scheme toward the detection of glucose levels in human serum.Entities:
Keywords: integrated passive device fabrication process; non-invasive glucose biosensor; quantitative detection; radio frequency resonator; reusable biosensor; ultrafast biosensor
Mesh:
Substances:
Year: 2020 PMID: 32168963 PMCID: PMC7146331 DOI: 10.3390/s20061565
Source DB: PubMed Journal: Sensors (Basel) ISSN: 1424-8220 Impact factor: 3.576
Figure 1The illustration of glucose biosensor based on the RF resonator. (a) The SEM image of the fabricated biosensor with ports description. (b) The sensitive area of the hammer-shaped capacitor. (c) The simulated electric field distribution for the proposed biosensor at the resonance frequency. (d) The equivalent circuit model of the proposed biosensor.
Figure 2The fabrication process flow of the proposed biosensor.
Figure 3(a) The experimental setup of the proposed chip measurement for detecting variable glucose level. (b) The schematic diagram of measurement. (c) The fabricated biosensor attached on a PCB with input and output connection for glucose level measurement.
Figure 4The AFM 3-D view of surface morphologies of top Au layers with (a) as-fabricated, (b) 3 min etched, and (c) 5 min etched. The images of 150 mg/dL glucose droplet onto biosensor with (a.1) as-fabricated, (b.1) 3 min etched, and (c.1) 5 min etched.
The recipe of Au dry etch process parameters.
| Recipe Set Values | |
|---|---|
| Cl2 | 20 sccm |
| Ar | 5 sccm |
| Pressure | 2 mTorr |
| RF coil power | 600 W |
| RF platen power | 250 W |
| Temperature | 20 °C |
Figure 5Shift in resonance frequency and magnitude of reflection coefficient (S11) under different conditions: (a) various solution and (b) various glucose samples concentrations (50–500 mg/dL). Regression analysis for the shift in resonance frequency (c) and magnitude of reflection coefficient (S11) (d) with error bars for different glucose sample concentrations.
Figure 6The analysis for surface morphology of the sensing area. (a) The 2D view of bare biosensor, (a.1) the 3D view of bare biosensor, (a.2) the RF measurement of bare biosensor, and (a.3) the cross-sectional surface line profile of surface morphology for bare biosensor. Bare chip refers to the chip treated by a 3 min dry etching process. (b) The 2D view of biosensor with glucose concentration of 150 mg/dL, (b.1) the 3D view of biosensor with glucose concentration of 150 mg/dL, (b.2) the RF measurement of biosensor with glucose concentration of 150 mg/dL, and (b.3) the cross-sectional surface line profile of surface morphology for biosensor with glucose concentration of 150 mg/dL. (c) The 2D view of biosensor after cleaning, (c.1) the 3D view of biosensor after cleaning, (c.2) the RF measurement of biosensor after cleaning, and (c.3) the cross-sectional surface line profile of surface morphology for biosensor after cleaning.
Performances of the different measured resonance frequencies with various glucose concentrations ranging from 50 mg/dL to 500 mg/dL.
| S.N 1 | G. C. 2 (mg/dL) | Resonance Frequency (GHz) | RSD 5 (%) | ||||||
|---|---|---|---|---|---|---|---|---|---|
| 1st Test | 2nd Test | 3rd Test | 4th Test | 5th Test | Mean 3 | Mean ± RSD (fav 4) | |||
| 1 | 50 | 3.83 | 3.84 | 3.81 | 3.83 | 3.82 | 3.826 | 3.826 ± 0.26% | 0.26 |
| 2 | 100 | 3.94 | 3.98 | 3.93 | 3.93 | 3.93 | 3.942 | 3.942 ± 0.49% | 0.49 |
| 3 | 150 | 4.08 | 4.03 | 4.06 | 4.05 | 4.07 | 4.058 | 4.058 ± 0.42% | 0.42 |
| 4 | 200 | 4.38 | 4.40 | 4.36 | 4.38 | 4.37 | 4.378 | 4.378 ± 0.30% | 0.30 |
| 5 | 250 | 4.72 | 4.68 | 4.67 | 4.70 | 4.70 | 4.694 | 4.694 ± 0.37% | 0.37 |
| 6 | 300 | 4.85 | 4.84 | 4.87 | 4.83 | 4.87 | 4.852 | 4.852 ± 0.32% | 0.32 |
| 7 | 350 | 5.00 | 4.97 | 4.99 | 5.01 | 5.02 | 4.998 | 4.998 ± 0.34% | 0.34 |
| 8 | 400 | 5.10 | 5.17 | 5.19 | 5.06 | 5.10 | 5.124 | 5.124 ± 0.94% | 0.94 |
| 9 | 450 | 5.54 | 5.53 | 5.56 | 5.53 | 5.56 | 5.544 | 5.544 ± 0.24% | 0.24 |
| 10 | 500 | 5.63 | 5.64 | 5.66 | 5.66 | 5.66 | 5.650 | 5.650 ± 0.22% | 0.22 |
1 sample number; 2 glucose concentration; 3 average of the five experiments; 4 final average resonance frequency; 5 relative standard deviation.
Performance of the proposed glucose sensor compared with recently reported studies.
| Ref. | Proposed Method | Response Time (s) | LOD (mg/dL) |
|---|---|---|---|
| [ | RF patch on silicon substrate by characterization of effective dielectric constant | Not Given | 26.54 |
| [ | Magnetic acoustic resonance sensor | 22 min | 36.36 |
| [ | Impedance spectroscopy | Not Given | 12.02 |
| [ | Forster resonance energy transfer | 15 min | 25 |
| [ | Rectangular meandered line based RF resonator | 60 | 8.01 |
| [ | Air bridge enhanced capacitor based RF resonator | 40 | 9.69 |
| This work | hammer-shaped capacitors and spiral inductors constructed RF resonator | <0.85 s | 8.01 |