There are few methods and insufficient accuracy for growth differentiation factor 11 (GDF11) concentration detection. In this paper, we designed a twisted fiber cladding surface plasmon resonance (SPR) sensor, which can achieve a high precision detection of GDF11 concentration. The new structure of the fiber cladding SPR sensor was realized by coupling the light in the fiber core to the cladding through fiber thermal fusion twisting micromachining technology; a series of functionalized modifications were made to the sensor surface to obtain a fiber sensor capable of GDF11 specific recognition. The experimental results showed when GDF11 antigen concentration was 1 pg/mL–10 ng/mL, the sensor had a detection sensitivity of 2.518 nm/lgC, a detection limit of 0.34 pg/mL, and a good log-linear relationship. The sensor is expected to play a role in the rapid and accurate concentration detection of pathological study for growth differentiation factors.
We propose a novel dual-channel fiber surface plasmon resonance (SPR)
sensor based on a metalized core. Using a polymer, the cladding and
coating layer of the sensor coated with a metal sensing film are
restored. The parameters of the sensor are determined after studying
the influence of different polymers and sensing films on the dynamic
range and sensing sensitivity. A silver film coated with UV-curable
adhesive and a gold film coated with polydimethylsiloxane (PDMS) with
respective sensing sensitivities of up to 1.39 and 1.48 nm/°C are
selected after optimization to construct the dual-channel sensor. A
dual-channel fiber SPR temperature compensation refractive index
sensor with improved accuracy is then constructed with a 20-nm gold
film for the refractive index sensing unit and a 50-nm gold film
coated with PDMS for the temperature sensing unit. Owing to its
complete fiber structure, the SPR sensor has good mechanical
properties and high practical value, and it can be easily applied to
real-time temperature measurements and temperature compensation in
various fields.
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