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Facet-Selective Growth on Nanowires Yields Multi-Component Nanostructures and Photonic Devices

Authors
Kempa, Thomas J.Kim, Sun-KyungDay, Robert W.Park, Hong-GyuNocera, Daniel G.Lieber, Charles M.
Issue Date
11-12월-2013
Publisher
AMER CHEMICAL SOC
Citation
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, v.135, no.49, pp.18354 - 18357
Indexed
SCIE
SCOPUS
Journal Title
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY
Volume
135
Number
49
Start Page
18354
End Page
18357
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/101298
DOI
10.1021/ja411050r
ISSN
0002-7863
Abstract
Enhanced synthetic control of the morphology, crystal structure, and composition of nanostructures can drive advances in nanoscale devices. Axial and radial semiconductor nanowires are examples of nanostructures with one and two structural degrees of freedom, respectively, and their synthetically tuned and modulated properties have led to advances in nanotransistor, nanophotonic, and thermoelectric devices. Similarly, developing methods that allow for synthetic control of greater than two degrees of freedom could enable new opportunities for functional nanostructures. Here we demonstrate the first regioselective nanowire shell synthesis in studies of Ge and Si growth on faceted Si nanowire surfaces. The selectively deposited Ge is crystalline, and its facet position can be synthetically controlled in situ. We use this synthesis to prepare electrically addressable nanocavities into which solution soluble species such as Au nanoparticles can be incorporated. The method furnishes multicomponent nanostructures with unique photonic properties and presents a more sophisticated nanodevice platform for future applications in catalysis and photodetection.
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