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  5. Large-Scale Hierarchical Organization of Nanowires for Functional Nanosystems

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Article
English
2004

Large-Scale Hierarchical Organization of Nanowires for Functional Nanosystems

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English
2004
Japanese Journal of Applied Physics
Vol 43 (7S)
DOI: 10.1143/jjap.43.4465

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Charles M. Lieber
Charles M. Lieber

Harvard University

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Dongmok Whang
Song Jin
Charles M. Lieber

Abstract

We review recent studies of solution-based hierarchical organization of nanowire building blocks. Nanowires have been aligned with controlled nanometer to micrometer scale separation using the Langmuir-Blodgett technique, transferred to planar substrates in a layer-by-layer process to form parallel and crossed nanowire structures over centimeter length scales, and then efficiently patterned into repeating arrays of controlled dimensions and pitch using photolithography. The hierarchically-organized nanowires open up key opportunities in several general areas of nanoscale science and technology. First, hierarchically-assembled nanowire arrays have been used as masks to define nanometer scale metal lines and surface features over large areas. Second, hierarchically-assembled nanowire arrays have been used to fabricate fully-scalable centimeter size arrays of field-effect transistors in high yields without requiring alignment of individual nanowires to output electrodes. Diverse applications of this approach for enabling a broad range of functional nanosystems, including macroelectronic and sensing applications, are described.

How to cite this publication

Dongmok Whang, Song Jin, Charles M. Lieber (2004). Large-Scale Hierarchical Organization of Nanowires for Functional Nanosystems. Japanese Journal of Applied Physics, 43(7S), pp. 4465-4465, DOI: 10.1143/jjap.43.4465.

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Publication Details

Type

Article

Year

2004

Authors

3

Datasets

0

Total Files

0

Language

English

Journal

Japanese Journal of Applied Physics

DOI

10.1143/jjap.43.4465

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