Surface plasmon resonance (SPR) sensor for the detection of hemoglobin concentration in human blood is proposed. Previous experimental results describing variation of refractive index of human blood with hemoglobin concentration at different wavelengths are considered for theoretical calculations. The angular interrogation method along with silica substrate and gold layer is considered. The sensor's performance is closely analyzed in terms of well-defined performance parameters: sensitivity, accuracy, resolution, and signal-to-noise ratio, in order to achieve reliable and accurate hemoglobin detection. The influence of operating wavelength on the performance of sensor scheme is critically investigated. Performance comparison for two different substrates is carried out. The results are explained in terms of light coupling and plasmon resonance condition. The proposed biosensor has the potential to provide high sensitivity, accuracy, and large operating range of hemoglobin detection, along with much higher resolution compared with existing methods, thereby opening an easy and reliable window for biomedical applications.
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28 July 2013
Research Article|
July 23 2013
Plasmonic biosensor for detection of hemoglobin concentration in human blood: Design considerations Available to Purchase
Anuj K. Sharma
Anuj K. Sharma
a)
Department of Applied Physics, School of Vocational Studies & Applied Sciences, Gautam Buddha University
, Greater Noida, Gautam Budh Nagar-201312, Uttar Pradesh, India
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Anuj K. Sharma
a)
Department of Applied Physics, School of Vocational Studies & Applied Sciences, Gautam Buddha University
, Greater Noida, Gautam Budh Nagar-201312, Uttar Pradesh, India
a)
Electronic addresses: [email protected] and [email protected].
J. Appl. Phys. 114, 044701 (2013)
Article history
Received:
May 22 2013
Accepted:
July 05 2013
Citation
Anuj K. Sharma; Plasmonic biosensor for detection of hemoglobin concentration in human blood: Design considerations. J. Appl. Phys. 28 July 2013; 114 (4): 044701. https://doi.org/10.1063/1.4816272
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