Direct spectral imaging of plasmonic nanohole arrays for real-time sensing

被引:20
作者
Seiler, Spencer T. [1 ]
Rich, Isabel S. [1 ]
Lindquist, Nathan C. [1 ]
机构
[1] Bethel Univ, Dept Phys, 3900 Bethel Dr, St Paul, MN 55112 USA
关键词
plasmonics; nanohole arrays; lab on a chip; real-time sensing; surface plasmon resonance imaging; EXTRAORDINARY OPTICAL-TRANSMISSION; ENHANCED RAMAN-SPECTROSCOPY; GAS-DETECTION; FLOW-THROUGH; HOLE ARRAYS; RESONANCE; SENSORS; BIOSENSORS; MICROFLUIDICS; PHASE;
D O I
10.1088/0957-4484/27/18/184001
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
Plasmon-enhanced optical transmission through arrays of nano-structured holes has led to the development of a new generation of optical sensors. In this paper, to dramatically simplify the standard optical setups of these sensors, we position the nanoholes, an LED illumination source and a spacer layer directly on top of a CMOS imager chip. Transmitted light diffracts from the nanohole array, spreading into a spectrum over the space of a millimeter to land on the imager as a full spectrum. Our chip is used as a sensor in both a liquid and a gas environment. The spectrum is monitored in real-time and the plasmon-enhanced transmission peaks shift upon exposure to different concentrations of glycerol-in-water solutions or ethanol vapors in nitrogen. While liquids provide good refractive index contrast for sensing, to enhance sensitivity to solvent vapors, we filled the nanoholes with solvatochromic dyes. This on-chip solution circumvents the bulky components (e.g. microscopes, coupling optics, and spectrometers) needed for traditional plasmonic sensing setups, uses the nanohole array as both the sensing surface and a diffraction grating, and maintains good sensitivity. Finally, we show simultaneous sensing from two side-by-side locations, demonstrating potential for multiplexing and lab on a chip integration.
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页数:9
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共 64 条
[1]   Biosensing with plasmonic nanosensors [J].
Anker, Jeffrey N. ;
Hall, W. Paige ;
Lyandres, Olga ;
Shah, Nilam C. ;
Zhao, Jing ;
Van Duyne, Richard P. .
NATURE MATERIALS, 2008, 7 (06) :442-453
[2]   Recent progress in SERS biosensing [J].
Bantz, Kyle C. ;
Meyer, Audrey F. ;
Wittenberg, Nathan J. ;
Im, Hyungsoon ;
Kurtulus, Ozge ;
Lee, Si Hoon ;
Lindquist, Nathan C. ;
Oh, Sang-Hyun ;
Haynes, Christy L. .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2011, 13 (24) :11551-11567
[3]   Surface plasmon subwavelength optics [J].
Barnes, WL ;
Dereux, A ;
Ebbesen, TW .
NATURE, 2003, 424 (6950) :824-830
[4]   Surface-Enhanced Raman Spectroscopy of Benzenethiol Adsorbed from the Gas Phase onto Silver Film over Nanosphere Surfaces: Determination of the Sticking Probability and Detection Limit Time [J].
Biggs, Kevin B. ;
Camden, Jon P. ;
Anker, Jeffrey N. ;
Van Duyne, Richard P. .
JOURNAL OF PHYSICAL CHEMISTRY A, 2009, 113 (16) :4581-4586
[5]   Gas Sensing with High-Resolution Localized Surface Plasmon Resonance Spectroscopy [J].
Bingham, Julia M. ;
Anker, Jeffrey N. ;
Kreno, Lauren E. ;
Van Duyne, Richard P. .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 2010, 132 (49) :17358-17359
[6]   Optical alcohol sensor using lipophilic Reichardt's dyes in polymer membranes [J].
Blum, P ;
Mohr, GJ ;
Matern, K ;
Reichert, J ;
Spichiger-Keller, UE .
ANALYTICA CHIMICA ACTA, 2001, 432 (02) :269-275
[7]   How Holes Can Obscure the View: Suppressed Transmission through an Ultrathin Metal Film by a Subwavelength Hole Array [J].
Braun, Julia ;
Gompf, Bruno ;
Kobiela, Georg ;
Dressel, Martin .
PHYSICAL REVIEW LETTERS, 2009, 103 (20)
[8]   Surface plasmon resonance imaging measurements of ultrathin organic films [J].
Brockman, JM ;
Nelson, BP ;
Corn, RM .
ANNUAL REVIEW OF PHYSICAL CHEMISTRY, 2000, 51 :41-63
[9]   Plasmonics for future biosensors [J].
Brolo, Alexandre G. .
NATURE PHOTONICS, 2012, 6 (11) :709-713
[10]   Trends and challenges of refractometric nanoplasmonic biosensors: A review [J].
Carmen Estevez, M. ;
Otte, Marinus A. ;
Sepulveda, Borja ;
Lechuga, Laura M. .
ANALYTICA CHIMICA ACTA, 2014, 806 :55-73