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Competing Classical and Quantum Effects in Shape Relaxation of a Metallic NanostructureWe demonstrate for the first time that the quantum size effect (QSE) plays a competing role along side the classical thermodynamic effect in the shape relaxation of a small metallic island. Together, these effects transforms a lead(Pb) island grown on Si(111) substrate from its initially flattop faceted morphology to a peculiar ring-shape island, a process catalysed by the tip electric field of a scanning tunnelling microscope (STM). We shall show for the first time how QSE affects the relaxation process dynamically. In particular, it leads to a novel strip-flow growth and double-step growth on selective strips of a plateau inside the ring, defined by the substrate steps more than 60?0?3 below. It appears that atoms diffusing on the plateau can clearly (sub i)(deg)sense(sub i)+/- the quantized energy states inside the island and have preferentially attached to regions that further reduces the surface energy as a result of the QSE, limiting its own growth and stabilizing the ring shape. The mechanism proposed here offers a sound explanation for ring shape metal and semiconductor islands observed in other systems as well.
Document ID
20030018930
Acquisition Source
Ames Research Center
Document Type
Conference Paper
Authors
Chen, Dongmin
(Harvard Univ. MA United States)
Okamoto, Hiroshi
(Harvard Univ. MA United States)
Yamada, Toshishi
(NASA Ames Research Center Moffett Field, CA United States)
Biegel, Bryan
Date Acquired
August 21, 2013
Publication Date
January 1, 2003
Subject Category
Solid-State Physics
Meeting Information
Meeting: American Physical Society March 2003 Meeting
Location: Austin, TX
Country: United States
Start Date: March 3, 2003
End Date: March 7, 2003
Funding Number(s)
CONTRACT_GRANT: DTTS59-99-D-00437
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.

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