Resolution enhancement of optical surface plasmon resonance sensor using metamaterial

Sarika Pal , Y. K. Prajapati , J. P. Saini , V. Singh

Photonic Sensors ›› 2014, Vol. 5 ›› Issue (4) : 330 -338.

PDF
Photonic Sensors ›› 2014, Vol. 5 ›› Issue (4) : 330 -338. DOI: 10.1007/s13320-015-0269-5
Regular

Resolution enhancement of optical surface plasmon resonance sensor using metamaterial

Author information +
History +
PDF

Abstract

In this paper, we present and discuss a path to extend the enhancement of the resolution of an optical surface plasmon resonance (SPR) sensor. Basically, our approach is to combine bi-metamaterial layers to design the SPR sensor. The calculation shows that the proposed SPR sensor structure has a preference over the conventional SPR sensors and bimetallic SPR sensors since it gives a much sharper reflectance dip and can achieve considerable sensitivity improvement when compared to the recently reported investigations. The effects of the metamaterial permittivity, permeability, and thickness on the reflectance curve are studied. It is also seen that metamaterial layers improve the field of the proposed SPR structure, which may provide a novel tool to significantly enhance the sensitivity and resolution of the sensors.

Keywords

Surface plasmon resonance sensor / metamaterials / Fresnel equations / reflectance

Cite this article

Download citation ▾
Sarika Pal, Y. K. Prajapati, J. P. Saini, V. Singh. Resolution enhancement of optical surface plasmon resonance sensor using metamaterial. Photonic Sensors, 2014, 5(4): 330-338 DOI:10.1007/s13320-015-0269-5

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Burke J. J., Stegeman G. I., Tamir T.. Surface polariton like waves guided by thin lossy metalfilms. Physical Review B, 1986, 33(8): 5186-5201.

[2]

Raether H.. Surface plasmons on smooth and rough surfaces and on grating, 1988, Berlin, Germany: Springer-Verlag

[3]

Zynio S. A., Samoylov A. V., Surovtseva E. R., Mirsky V. M., Shirshov Y. M.. Bimetallic layers increase sensitivity of affinity sensors based on SPR. Sensors, 2002, 2(2): 62-70.

[4]

Homola J.. Present and future of Surface plasmon resonance biosensors. Analytical and Bioanalytical Chemistry, 2003, 377(3): 528-539.

[5]

Kretschmann E., Raether H.. Radiative decay of non radiative surface plasmons excited by light. Zeitschrift für Naturforschung A, 1968, 23(12): 2135-2136.

[6]

Dostálek J., Kasry A., Knoll W.. Long range surface plasmons for observation of biomolecular binding events at metallic surfaces. Plasmonics, 2007, 2(3): 97-106.

[7]

Nenninger G. G., Tobiška P., Homola J., Yee S. S.. Long-range surface plasmons for high-resolution SPR sensors. Sensors and Actuators B: Chemical, 2001, 74(1–3): 145-151.

[8]

Ong B. H., Yuan X., Tjin S. C., Zhang J., Ng H. M.. Optimised film thickness for maximum evanescent field enhancement of a bimetallic film SPR biosensor. Sensors and Actuators B: Chemical, 2006, 114(2): 1028-1034.

[9]

Chien F. C., Chen S. J.. A sensitivity comparison of optical biosensor based on four different SPR modes. Biosensors and Bioelectronics, 2004, 20(3): 633-642.

[10]

Homola J.. Surface Plasmon Resonance Based Sensors, 2006, Berlin, Germany: Springer-Verlag

[11]

Hoa X. D., Kirk A. G., Tabrizian M.. Towards integrated and sensitive surface plasmon resonance biosensors: a review of recent progress. Biosensors and Bioelectronics, 2007, 23(3): 151-160.

[12]

Lin C. W., Chen K. P., N Hsiao C., Lin S., Lee C. K.. Design and fabrication of an alternating dielectric multi-layer device for surface plasmon resonance sensor. Sensors and Actuators B: Chemical, 2006, 113(1): 169-176.

[13]

Veselago V.. The electrodynamics of substance with simultaneously negative values of e and µ. Soviet Physics uspekhi, 1968, 10(9): 509-514.

[14]

Sharma D., Verma A., Prajapati Y. K., Singh V., Saini J. P.. Forward and backward wave propagation in multilayer planar waveguide using metamaterials layer. Optical and Quantum Electronics, 2013, 45(2): 105-114.

[15]

Pendry J. B., Holden A. J., Robbins D. J., Stewart W. J.. Magnetism from conductors and enhanced nonlinear phenomena. IEEE Transactions on Microwave Theory and Techniques, 1999, 47(11): 2075-2084.

[16]

Shelby R. A., Smith D. R., Schultz S.. Experimental verification of a negative index of refraction. Science, 2011, 292(5514): 77-79.

[17]

Pendry J. B.. Negative refraction makes a perfect lens. Physical Review Letters, 2000, 85(18): 3966-3969.

[18]

Chen T., Li S., Sun H.. Metamaterials application in sensing. Sensors, 2012, 12(3): 2742-2765.

[19]

Upadhyay A., Prajapati Y. K., Singh V., Saini J. P.. Sensitivity estimation of metamaterial loaded planar waveguide sensor. Optical and Quantum Electronics, 2014, 46(12): 1.

[20]

Upadhyay A., Prajapati Y. K., Singh V., Saini J. P.. Comprehensive study of reverse index waveguide based sensor with metamaterial as a guiding layer. Optics Communications, 2015, 348, 71-76.

[21]

Lee K. S., Son J. M., Jeong D. Y., Lee T. S., Kim W. M.. Resolution enhancement in SPR sensor based on waveguide coupled mode by combining a bimetallic approach. Sensors, 2010, 10(12): 11390-11399.

[22]

Prajapati Y. K., Yadav A., Verma A., Singh V., Saini J. P.. Effect of metamaterial layer on optical surface plasmon resonance sensor. Optik–International Journal for Light and Electron Optics, 2013, 124(18): 3607-3610.

[23]

Park K., Lee B. J., Fu C., Zhang Z. M.. Study of the surface and bulk polaritons with negative index metamaterial. Journal of the Optical Society of America B, 2005, 22(5): 1016-1023.

[24]

Born M., Wolf E.. Principles of optics, 1980, Oxford, Britain: Cambridge University Press

AI Summary AI Mindmap
PDF

113

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/