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Characterization of Electrodeposited Gold and Palladium Nanowire Gratings with Optical Diffraction Measurements.

Authors :
Halpern, Aaron R.
Naoya Nishi
Jia Wen
Fan Yang
Chengxiang Xiang
Penner, Reginald M.
Corn, Robert M.
Source :
Analytical Chemistry. 7/15/2009, Vol. 81 Issue 14, p5585-5592. 8p. 10 Graphs.
Publication Year :
2009

Abstract

Parallel arrays of either Au or Pd nanowires were fabricated on glass substrates via the electrochemical process of lithographically patterned nanowire electrodeposition (LPNE) and then characterized with scanning electron microscopy (SEM) and a series of optical dithaction measurements at 633 nm. Nanowires with widths varying from 25 to 150 tim were electrodeposited onto nanoscale Ni surfaces created by the undercut etching of a photoresist pattern on a planar substrate. With the use of a simple transmission grating geometry, up to 60 diffraction orders were observed from the nanowire gratings, with separate oscillatory intensity patterns appearing in the even and odd diffraction orders. The presence of these intensity oscillations is attributed to the LPNE array fabrication process, which creates arrays with alternating interwire spacings of distances Δ+A and d -Δ, where d =25 μm and the asymmetry Δ varied from 0 to 3.5 μm. The amount of asymmetry could be controlled by varying the LPNE undercut etching time during the creation of the nanoscale Ni surfaces. The Fourier transform of a mathematical model of the nanowire array was used to predict the diffraction intensity patterns and quantitatively determine A for any grating. Additional sensitivity and an expanded dithaction order range were obtained through the use of external reflection (ER) and total internal reflection (TIR) diffraction geometries. [ABSTRACT FROM AUTHOR]

Details

Language :
English
ISSN :
00032700
Volume :
81
Issue :
14
Database :
Academic Search Index
Journal :
Analytical Chemistry
Publication Type :
Academic Journal
Accession number :
44721605
Full Text :
https://doi.org/10.1021/ac900938t