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Formation of Nanotubes and Hollow Nanoparticles Based on Kirkendall and Diffusion Processes: A Review

Small · 2007 · Vol. 3(10) · pp. 1660–1671
Hong Jin FanU. GöseleMargit Zacharias

Abstract

The Kirkendall effect is a consequence of the different diffusivities of atoms in a diffusion couple causing a supersaturation of lattice vacancies. This supersaturation may lead to a condensation of extra vacancies in the form of so-called "Kirkendall voids" close to the interface. On the macroscopic and micrometer scale these Kirkendall voids are generally considered as a nuisance because they deteriorate the properties of the interface. In contrast, in the nanoworld the Kirkendall effect has been positively used as a new fabrication route to designed hollow nano-objects. In this Review we summarize and discuss the demonstrated examples of hollow nanoparticles and nanotubes induced by the Kirkendall effect. Merits of this route are compared with other general methods for nanotube fabrication. Theories of the kinetics and thermodynamics are also reviewed and evaluated in terms of their relevance to experiments. Moreover, nanotube fabrication by solid-state reactions and non-Kirkendall type diffusion processes are covered.

Chemical and Physical Properties of MaterialsAdvanced Thermoelectric Materials and Devicesnanoparticles nucleation surface interactionsKirkendall effectMaterials scienceFabricationSupersaturationDiffusionNanotechnologyNanotubeNanoparticleChemical physicsThermodynamics

MeSH terms

DiffusionNanotubesMicroscopy, Electron, TransmissionNanoparticles
Citations
941
FWCI
25.34
field-weighted impact
References
108
Percentile
100%
vs. same field & year
Citations per year
References
C60: Buckminsterfullerene
Nature · 1985 · 15,775 citations
Helical microtubules of graphitic carbon
Nature · 1991 · 42,584 citations
Diffusion Mechanisms and Point Defects in Silicon and Germanium
physica status solidi (b) · 1968 · 470 citations
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