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Band structure quantization in nanometer sized ZnO clusters
Author(s) -
Koen Schouteden,
Y. J. Zeng,
Koen Lauwaet,
C. Romero,
Bart Goris,
Sara Bals,
Gustaaf Van Tendeloo,
Peter Lievens,
Chris Van Haesendonck
Publication year - 2013
Publication title -
nanoscale
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 2.038
H-Index - 224
eISSN - 2040-3372
pISSN - 2040-3364
DOI - 10.1039/c3nr33989k
Subject(s) - materials science , quantum dot , heterojunction , quantization (signal processing) , nanometre , band gap , scanning transmission electron microscopy , transmission electron microscopy , spectroscopy , cluster (spacecraft) , optoelectronics , nanotechnology , scanning tunneling microscope , scanning electron microscope , fabrication , ultra high vacuum , physics , composite material , quantum mechanics , computer science , computer vision , programming language , medicine , alternative medicine , pathology
Nanometer sized ZnO clusters are produced in the gas phase and subsequently deposited on clean Au(111) surfaces under ultra-high vacuum conditions. The zinc blende atomic structure of the approximately spherical ZnO clusters is resolved by high resolution scanning transmission electron microscopy. The large band gap and weak n-type conductivity of individual clusters are determined by scanning tunnelling microscopy and spectroscopy at cryogenic temperatures. The conduction band is found to exhibit clear quantization into discrete energy levels, which can be related to finite-size effects reflecting the zero-dimensional confinement. Our findings illustrate that gas phase cluster production may provide unique possibilities for the controlled fabrication of high purity quantum dots and heterostructures that can be size selected prior to deposition on the desired substrate under controlled ultra-high vacuum conditions.

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