| Literature DB >> 31207960 |
Nur Alia Sheh Omar1, Yap Wing Fen2,3, Silvan Saleviter4, Wan Mohd Ebtisyam Mustaqim Mohd Daniyal5, Nur Ain Asyiqin Anas6, Nur Syahira Md Ramdzan7, Mohammad Danial Aizad Roshidi8.
Abstract
The emergence of unintentional poisoning and uncontrolled vector diseases have contributed to sensor technologies development, leading to the more effective detection of diseases. In this study, we present the combination of graphene-based material with surface plasmon resonance technique. Two different graphene-based material sensor chips were prepared for rapid and quantitative detection of dengue virus (DENV) and cobalt ion (Co2+) as an example of typical metal ions. As the fundamental concept of surface plasmon resonance (SPR) sensor that relies on the refractive index of the sensor chip surface, this research focused on the SPR signal when the DENV and Co2+ interact with the graphene-based material sensor chip. The results demonstrated that the proposed sensor-based graphene layer was able to detect DENV and Co2+ as low as 0.1 pM and 0.1 ppm respectively. Further details in the detection and quantification of analyte were also discussed in terms of sensitivity, affinity, and selectivity of the sensor.Entities:
Keywords: biosensor; graphene-based material; quantum dots; surface plasmon resonance
Year: 2019 PMID: 31207960 PMCID: PMC6631188 DOI: 10.3390/ma12121928
Source DB: PubMed Journal: Materials (Basel) ISSN: 1996-1944 Impact factor: 3.623
Graphene- surface plasmon resonance (SPR)-based materials in biological applications.
| Sensor Layer | Target | Limit of Detection | Sensitivity | Reference |
|---|---|---|---|---|
| Graphene | α-thrombin | 0.05 nM | - | [ |
| Au/SAM/Graphene/ | Tuberculosis bacillus | - | - | [ |
| Ag/Graphene-MoS2 | ssDNA | - | - | [ |
| Graphene | Mycobacterium tuberculosis (cssDNA) | 28 fM | - | [ |
| RGO | Rabbit IgG | 0.0625 µg/mL | - | [ |
| Au/GO-COOH | Anti BSA | 0.01 pg/mL | - | [ |
| Cr/Au/MoS2/Graphene | Urea | - | 230°/RIU | [ |
| Au/SAM/GO/3ABA | Galectin-3 | 2.0 ng/mL | - | [ |
| Au/Graphene | Glucose | - | 1227 nm/RIU | [ |
| DNA | 0.1 nM | - |
Graphene-SPR-based materials in metal ions sensing.
| Active Layer | Metal Ions | Limit of Detection | Sensitivity | References |
|---|---|---|---|---|
| Au/CS/GO | Pb2+ | 0.03 ppm | 1.11200° ppm−1 | [ |
| AuNPs/GO/PANI | Pb2+ | 0.03 ppm | - | [ |
| Au-Ag-Au CS-GO | Pb2+ | 0.1 ppm | 2.05° ppm−1 | [ |
| Au/Ag/Au/CS-GO | Hg2+ | 0.1 ppm | 1.66° ppm−1 | [ |
| C-GO-V | K+ | 0.001 ppm | 0.00948° ppm−1 | [ |
| CTA-NCC/GO | Cu2+ | 0.01 ppm | 3.271° ppm−1 | [ |
| CTA-NCC/GO | Ni2+ | 0.01 ppm | 1.509° ppm−1 | [ |
| Cs/CGQDs | Hg2+ | 0.5 ppm | 0.00062° ppm−1 | [ |
Figure 1Schematic diagram of the detection-based SPR technique. (a) Surface plasmon waves; (b) Electric field components; (c) SPR resonance angle.
Figure 2Illustration of the SPR setup system.
Figure 3Schematic diagram of the experimental procedure.
Figure 4Optical reflectance for 10 pM dengue virus (DENV) solution in contact with (a) Au, (b) Au/Ab, and (c) Au/CdSQDs-rGO/Ab sensor film.
Figure 5Optical reflectance for DENV concentrations (0.1–100 pM) in contact with Au/CdSQDs-rGO/Ab layer (inset: the zoomed in graph).
Figure 6Relationship between the SPR angle shift (Δθ) and DENV concentration. (a) Langmuir and linear fitting; (b) Selectivity tests.
Figure 7Schematic diagram of an optical biosensor for cobalt detection.
Figure 8SPR optical curves for different concentration of cobalt ion (0, 0.1, 1, 10, and 100 ppm) in contact with the chitosan-GO-CdS QDs sensor layer.
Figure 9Data plotting the angle shift against the cobalt ion concentration fitted with Langmuir equation and linear fitting.