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Atomically flat single-crystalline gold nanostructures for plasmonic nanocircuitry

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arxiv 1004.1961 v4 pith:2C5GFMV3 submitted 2010-04-12 physics.optics cond-mat.mtrl-sciquant-ph

classification physics.opticscond-mat.mtrl-sciquant-ph
keywords goldplasmonichigh-definitionnanocircuitrynanostructureselementsfunctionaloptical
verification ladder T0 review T1 audit T2 compute T3 formal
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Deep subwavelength integration of high-definition plasmonic nanostructures is of key importance for the development of future optical nanocircuitry for high-speed communication, quantum computation and lab-on-a-chip applications. So far the experimental realization of proposed extended plasmonic networks consisting of multiple functional elements remains challenging, mainly due to the multi-crystallinity of commonly used thermally evaporated gold layers. Resulting structural imperfections in individual circuit elements will drastically reduce the yield of functional integrated nanocircuits. Here we demonstrate the use of very large (>100 micron^2) but thin (<80 nm) chemically grown single-crystalline gold flakes, which, after immobilization, serve as an ideal basis for focused-ion beam milling and other top-down nanofabrication techniques on any desired substrate. Using this methodology we obtain high-definition ultrasmooth gold nanostructures with superior optical properties and reproducible nano-sized features over micrometer length scales. Our approach provides a possible solution to overcome the current fabrication bottleneck and to realize high-definition plasmonic nanocircuitry.

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