A permanent optical storage medium exhibiting ultrahigh contrast, superior stability, and a broad working wavelength regime

In this paper we demonstrate an optical storage medium having advantages of ultrahigh contrast, superior stability, and broadband working wavelengths. Combining a single shot of deep-ultraviolet (UV) laser illumination with a Au particle-assisted etching process, we formed broadband antireflective,...

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Veröffentlicht in:Physical chemistry chemical physics : PCCP 2011-04, Vol.13 (13), p.5747-5752
Hauptverfasser: Tseng, Shao-Chin, Chen, Hsuen-Li, Liu, Haw-Woei, Yu, Chen-Chieh, Wang, Lon Alex, Chen, Yung-Pin
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Sprache:eng
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Zusammenfassung:In this paper we demonstrate an optical storage medium having advantages of ultrahigh contrast, superior stability, and broadband working wavelengths. Combining a single shot of deep-ultraviolet (UV) laser illumination with a Au particle-assisted etching process, we formed broadband antireflective, one-dimensional siliconnanowire arrays (SiNWs) with selectively at specific positions. Optical measurements and three-dimensional finite-difference time domain (3D-FDTD) simulations revealed ultrahigh reflection contrast between the Au and the SiNWs for both far- and near-field regimes. Relative to typical organic-based storage media, Au films and SiNWs are more stable, both chemically and thermally; therefore, we suspect that this new storage medium would exhibit high stability toward moisture, sunshine, and elevated temperatures. Using nanostructures to develop an optical storage medium exhibiting ultrahigh contrast, superior stability, and a broad working wavelength regime.
ISSN:1463-9076
1463-9084
DOI:10.1039/c0cp02289f