We report numerical analysis and experimental observation of strongly localized plasmons guided by triangular metal wedges and pay special attention to the effect of smooth (nonzero radius) tips. Dispersion, dissipation, and field structure of such wedge plasmons are analyzed using the compact two-dimensional finite-difference time-domain algorithm. Experimental observation is conducted by the end-fire excitation and near-field scanning optical microscope detection of the predicted plasmons on silver nanowedges with the wedge tip radii of 20, 85, and 125 nm that were fabricated by the focused-ion beam method. The effect of smoothing wedge tips is shown to be similar to that of increasing wedge angle. Increasing wedge angle or wedge tip radius results in increasing propagation distance at the same time as decreasing field localization (decreasing wave number). Quantitative differences between the theoretical and experimental propagation distances are suggested to be due to a contribution of scattered bulk and surface waves near the excitation region as well as the addition of losses due to surface roughness. The theoretical and measured propagation distances are several plasmon wavelengths and are useful for a range of nano-optical applications.
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1 August 2008
Research Article|
August 01 2008
Numerical and experimental investigation of wedge tip radius effect on wedge plasmons Available to Purchase
T. Ogawa;
T. Ogawa
a)
1Department of Optical Science and Technology,
The University of Tokushima
, 2-1 Minamijosanjima, Tokushima 770-8506, Japan
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D. F. P. Pile;
D. F. P. Pile
b)
1Department of Optical Science and Technology,
The University of Tokushima
, 2-1 Minamijosanjima, Tokushima 770-8506, Japan
2NSF Nanoscale Science and Engineering Center,
University of California
, 5130 Etcheverry Hall, Berkeley, California 94720-1740, USA
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T. Okamoto;
T. Okamoto
c)
1Department of Optical Science and Technology,
The University of Tokushima
, 2-1 Minamijosanjima, Tokushima 770-8506, Japan
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M. Haraguchi;
M. Haraguchi
d)
1Department of Optical Science and Technology,
The University of Tokushima
, 2-1 Minamijosanjima, Tokushima 770-8506, Japan
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M. Fukui;
M. Fukui
e)
1Department of Optical Science and Technology,
The University of Tokushima
, 2-1 Minamijosanjima, Tokushima 770-8506, Japan
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D. K. Gramotnev
D. K. Gramotnev
f)
3Applied Optics Program, School of Physical and Chemical Science,
Queensland University of Technology
, G.P.O. Box 2434, Brisbane, Queensland 4001, Australia
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T. Ogawa
1,a)
D. F. P. Pile
1,2,b)
T. Okamoto
1,c)
M. Haraguchi
1,d)
M. Fukui
1,e)
D. K. Gramotnev
3,f)
1Department of Optical Science and Technology,
The University of Tokushima
, 2-1 Minamijosanjima, Tokushima 770-8506, Japan
2NSF Nanoscale Science and Engineering Center,
University of California
, 5130 Etcheverry Hall, Berkeley, California 94720-1740, USA
3Applied Optics Program, School of Physical and Chemical Science,
Queensland University of Technology
, G.P.O. Box 2434, Brisbane, Queensland 4001, Australia
a)
Present address: Nichia Corporation, 491 Oka, Kaminaka-Cho, Anan, Tokushima 774-8601, Japan.
b)
Electronic mail: [email protected].
c)
Electronic mail: [email protected].
d)
Electronic mail: [email protected].
e)
Electronic mail: [email protected].
f)
Electronic mail: [email protected].
J. Appl. Phys. 104, 033102 (2008)
Article history
Received:
February 27 2008
Accepted:
May 25 2008
Citation
T. Ogawa, D. F. P. Pile, T. Okamoto, M. Haraguchi, M. Fukui, D. K. Gramotnev; Numerical and experimental investigation of wedge tip radius effect on wedge plasmons. J. Appl. Phys. 1 August 2008; 104 (3): 033102. https://doi.org/10.1063/1.2960543
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