研究目的
Investigating the development and performance of a surface plasmon resonance (SPR) based fiber optic sensor for the highly sensitive and selective detection of dopamine in synthetic cerebrospinal fluid, incorporating molecular imprinting technology and a permselective nafion membrane to minimize interference from other analytes.
研究成果
The developed SPR-based fiber optic sensor demonstrates high sensitivity, selectivity, and a low limit of detection of 18.9 pM for dopamine in synthetic cerebrospinal fluid. The combination of molecular imprinting, nafion membrane, and optical fiber substrate provides advantages such as miniaturization, fast response, and suitability for in vivo applications. This approach is promising for clinical diagnostics of neurological disorders, with recommendations for future work on real-sample testing and further miniaturization.
研究不足
The sensor may have limitations in real biological samples due to potential fouling or interference from other cations not fully repelled by nafion. The non-linear response at higher dopamine concentrations could affect accuracy, and the fabrication process, while simpler than some methods, still requires optimization for mass production. The study uses synthetic cerebrospinal fluid, which may not fully replicate in vivo conditions.
1:Experimental Design and Method Selection:
The study employs a surface plasmon resonance (SPR) transduction mechanism combined with molecular imprinting technology (MIP) for high sensitivity and selectivity. A fiber optic substrate is used for miniaturization and in vivo applications. The sensing layer involves a nanocomposite of multiwalled carbon nanotubes (MWCNTs) wrapped with dopamine-imprinted polypyrrole (PPy) and coated with a nafion membrane.
2:Sample Selection and Data Sources:
Artificial cerebrospinal fluid (aCSF) samples are prepared with dopamine concentrations ranging from 0 to 10^-5 M, using phosphate buffer and specific salts to mimic physiological conditions.
3:List of Experimental Equipment and Materials:
Equipment includes a scanning electron microscope (SEM) (Zeiss EVO 50), transmission electron microscope (TEM) (JEOL JEM-1400), UV-Vis spectrometer (Perkin Elmer Lambda 1050), tungsten halogen lamp (Avalight-HAL), spectrometer (Avaspec-3648), thermal evaporation coating unit, dip coater, and flow cell. Materials include plastic clad silica fiber (core diameter 600 μm, numerical aperture
4:4, from Fiberguide industries), silver wire, pyrrole, MWCNTs, hydrogen peroxide, iron(II) chloride, dopamine hydrochloride, uric acid, ascorbic acid, epinephrine, serotonin, nafion, SDS, CTAB, various salts for aCSF, and chemicals like ethanol and acids. Experimental Procedures and Operational Workflow:
The procedure involves functionalizing MWCNTs with carboxylic acid, polymerizing PPy around MWCNTs in the presence of dopamine to create imprinted sites, eluting dopamine to form cavities, coating with nafion, dip-coating the nanocomposite onto a silver-coated optical fiber probe, and recording SPR spectra for different dopamine concentrations in a flow cell setup with light from a halogen lamp coupled to a spectrometer.
5:Data Analysis Methods:
SPR spectra are analyzed to determine resonance wavelength shifts, sensitivity is calculated as the derivative of the calibration curve, limit of detection (LOD) is computed as three times the standard deviation divided by sensitivity near zero concentration, and selectivity, stability, and response time are assessed through control experiments and repeat measurements.
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scanning electron microscope
EVO 50
Zeiss
Used for morphological characterization of the nanocomposite.
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transmission electron microscope
JEM-1400
JEOL
Used for detailed imaging of the nanocomposite structure.
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UV-Vis spectrometer
Lambda 1050
Perkin Elmer
Used for UV-Vis measurements to confirm dopamine removal and other analyses.
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tungsten halogen lamp
Avalight-HAL
AVANTES
Used as a light source in the experimental setup for SPR measurements.
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spectrometer
Avaspec-3648
AVANTES
Used to collect and analyze the light exiting the fiber for SPR spectra.
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plastic clad silica fiber
core diameter 600 μm, numerical aperture 0.4
Fiberguide industries
Used as the optical fiber substrate for the SPR sensor probe.
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