2001LangmuirRequires access

Au “Ink” for AFM “Dip-Pen” Nanolithography

Benjamin W. Maynor, Yan Li, Jie Liu

Open publisher page 132 citations

Abstract

Scanning probe lithography is a rapidly growing research field, in which atomic force microscope based “dip-pen” nanolithography (DPN) is a simple new technique for creating chemically distinct nanostructures on surfaces in a “direct-write” fashion. Previous works demonstrate the transport of alkanethiols to a gold substrate, resulting in the formation of patterned self-assembled monolayers. Here, we show that surface-induced reduction of metal ions combined with DPN can be used to create metallic nanostructures on Si surfaces. Au nanostructures with sub-100-nm resolution can be created routinely, showing that the DPN technique is a general method for nanofabrication.

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What this paper is about

Scanning probe lithography is a rapidly growing research field, in which atomic force microscope based “dip-pen” nanolithography (DPN) is a simple new technique for creating chemically distinct nanostructures on surfaces in a “direct-write” fashion. Previous works demonstrate the transport of alkanethiols to a gold substrate, resulting in the formation of patterned self-assembled monolayers. Here, we show that surface-induced reduction of metal ions combined with DPN can be used to create metallic nanostructures on Si surfaces. Au nanostructures with sub-100-nm resolution can be created routinely, showing that the DPN technique is a general method for nanofabrication.

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OpenAlex reports 132 citations for this work. Citation counts describe recorded attention and do not establish research quality.

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Available abstract

Scanning probe lithography is a rapidly growing research field, in which atomic force microscope based “dip-pen” nanolithography (DPN) is a simple new technique for creating chemically distinct nanostructures on surfaces in a “direct-write” fashion. Previous works demonstrate the transport of alkanethiols to a gold substrate, resulting in the formation of patterned self-assembled monolayers. Here, we show that surface-induced reduction of metal ions combined with DPN can be used to create metallic nanostructures on Si surfaces. Au nanostructures with sub-100-nm resolution can be created routinely, showing that the DPN technique is a general method for nanofabrication.

Key concepts: Dip-pen nanolithography, Nanolithography, Nanotechnology, Lithography, Nanostructure, Substrate (aquarium), Materials science, Monolayer

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