Index sensing characteristics of the plasmonic sensor based on metal-insulator-metal waveguide-coupled structure

Jian-ping Guo , Jia-hu Zhu , Xu-guang Huang

Optoelectronics Letters ›› 2013, Vol. 9 ›› Issue (5) : 321 -324.

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Optoelectronics Letters ›› 2013, Vol. 9 ›› Issue (5) : 321 -324. DOI: 10.1007/s11801-013-3081-8
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Index sensing characteristics of the plasmonic sensor based on metal-insulator-metal waveguide-coupled structure

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Abstract

A plasmonic refractive index sensor based on metal-insulator-metal (MIM) waveguide-coupled structure is proposed and demonstrated in this paper. The physical mechanism of the device is deduced, and the finite difference time domain (FDTD) method is employed to simulate and study its index sensing characteristics. Both analytic and simulated results show that the resonant wavelength of the sensor has a linear relationship with the refractive index of material under sensing. Based on the relationship, the refractive index of the material can be obtained from the detection of the resonant wavelength. The results show that the sensitivity of the sensor can exceed 1600 nm/RIU, and it can be used in chemical and biological detections.

Keywords

Refractive Index / Perfectly Match Layer / Finite Difference Time Domain / Fano Resonance / Resonant Wavelength

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Jian-ping Guo, Jia-hu Zhu, Xu-guang Huang. Index sensing characteristics of the plasmonic sensor based on metal-insulator-metal waveguide-coupled structure. Optoelectronics Letters, 2013, 9(5): 321-324 DOI:10.1007/s11801-013-3081-8

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References

[1]

KreuwelH J M, LambeckP V, GentJ V, PopmaT J A. Proc. SPIE, 1987, 789: 218

[2]

HarrisR D, WilkinsonJ S. Sensors and Actuators B: Chemical, 1995, 29: 261

[3]

LaversC R, WilkinsonJ S. Sensors and Actuators B: Chemical, 1994, 22: 475

[4]

LevyR, PeledA, RuschinS. Sensors and Actuators B: Chemical, 2006, 119: 20

[5]

LiuJ, ChenB, YangH. Journal of Optoelectronics·Laser, 2011, 22: 1821

[6]

YuanY, DingL, GuoZ. Sensors and Actuators B: Chemical, 2011, 157: 240

[7]

BarnesW, DereusA, EbbsenT. Nature, 2003, 424: 824

[8]

GramotnevD, BozhevolnyiS. Nature Photonics, 2010, 4: 83

[9]

OzbayE. Science, 2006, 311: 189

[10]

LuH, LiuX, MaoD, WangG. Optics Letters, 2012, 37: 3780

[11]

WuX, ZhangJ, ChenJ, ZhaoC, GongQ. Refractive Index Sensor based on Surface-plasmon Interference, Optics Letters, 2009, 34: 392

[12]

ChenW, Jian-JunC, Wei-HuaT, Jing-HuaX. Chinese Physics Letters, 2012, 29: 127304

[13]

StewartM E, AndertonC R, ThompsonL B, MariaJ, GrayS K, RogersJ A, NuzzoR G. Chem. Rev., 2008, 108: 494

[14]

LeeD-J, YimH-D, LeeS-G, B-H O. Optics Express, 2011, 19: 19895

[15]

HanZ, ForsbergE, HeS. IEEE Photonics Technology Letters, 2007, 19: 91

[16]

VorobyevAY, GuoC. Applied Physics Letters, 2009, 94: 224102

[17]

LinX-S, HuangX-G. Optics Letters, 2008, 33: 2874

[18]

DionneJ, SweatlockL, AtwaterH, PolmanA. Plasmon Slot Waveguides: Towards Chip-scale Propagation with Subwavelength-scale Localization, Physical Review B, 2006, 73: 035407

[19]

DodabalapurA, RothbergL J, JordanR H, MillerT M, SlusherR E, PhillipsJ M. Journal of Applied Physics, 1996, 80: 6954

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