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×îÐÂÒ»ÆÚµÄ¡¶Adv.Funct.Mater¡·µÄ·âÃæÎÄÕ¾ÍÊÇAlivisatos×éµÄ£¬µÚÒ»×÷ÕßÊDz©Ê¿ºóYadong Yin£¬²©Ê¿Ê±µÄµ¼Ê¦ÊÇYounan Xia.ÆäÈ¥Berkeley×ö²©ºóÆÚ¼äÒѾ­ÓÐScienceºÍNature¸÷һƪ£¬NatureÉÏÊÇһƪ×ÛÊöÐÔÎÄÕ£¬½²°ëµ¼ÌåÁ¿×ÓµÄÐÎ×´¿ØÖƺϳɣ»ScienceÔòÊÇÀûÓÃKirkendallЧӦһ²½·¨ÖƱ¸³öÁ˿տǰ뵼ÌåÁ¿×ӵ㣬Óë±¾ÆÚµÄÎÄÕÂÃÜÇÐÏà¹Ø¡£Å£È˵ÄÎÄÕÂÖУ¬ÀíÂ۵ĽâÊÍÏ൱Ïêϸ£¬Õâ·½ÃæÖµµÃ¹úÄÚµÄÑо¿Õßѧϰ¡£×ö¶«Î÷²»½ö½öÊÇ×öÁ˳öÀ´£¬»¹ÒªÃ÷°×¾ßÌåÊÇÔõôÀ´µÄ¡£Ìý¹ýYounan XiaµÄ±¨¸æ£¬Ï£Íû½«À´Óлú»áÌýµ½AlivisatosµÄ±¨¸æ.


Adv. Funct.
Mater   Vol 16,
Iss11 , Pages 1389-1399


   
  Colloidal Synthesis of Hollow Cobalt Sulfide
Nanocrystals

Y. Yin 1, C. K. Erdonmez 2, A. Cabot 2, S. Hughes 2, A. P.
Alivisatos 1 2 *

1The Molecular Foundry and Materials Science Division, Lawrence
Berkeley National Laboratory, Berkeley, CA 94720,
USA

2Department of Chemistry, University of California at Berkeley,
Berkeley, USA

email: A. P. Alivisatos (alivis@berkeley.edu)




Formation of cobalt sulfide hollow nanocrystals through a
mechanism similar to the Kirkendall Effect has been investigated in detail. It
is found that performing the reaction at > 120
¡ãC leads to fast formation of a single void inside each shell,
whereas at room temperature multiple voids are formed within each shell,
which can be attributed to strongly temperature-dependent diffusivities for
vacancies. The void formation process is dominated by outward diffusion of
cobalt cations; still, the occurrence of significant inward transport of sulfur
anions can be inferred as the final voids are smaller in diameter than the
original cobalt nanocrystals. Comparison of volume distributions for initial and
final nanostructures indicates excess apparent volume in shells, implying
significant porosity and/or a defective structure. Indirect evidence for
fracture of shells during growth at lower temperatures was observed in
shell-size statistics and transmission electron microscopy images of as-grown
shells. An idealized model of the diffusional process imposes two minimal
requirements on material parameters for shell growth to be obtainable within a
specific
synthetic system.
Received: 20 March 2006; Accepted: 12 April
2006

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Group
:http://www.uark.edu/chemistry/facultystaff/faculty/peng/

Angew.
Chem. Int. Ed. 2006, Early view paper


Crystalline nanoflowers with different
chemical compositions and physical properties grown by limited ligand
protection




      
Crystalline nanoflowers of compounds with different chemical and physical
properties, for example, In2O3, ZnO, CoO, MnO, and ZnSe, are grown by a new
approach, limited ligand protection (LLP). LLP destabilizes the primary
nanoparticles and promots their three-dimensionally oriented attachment into
complex nanostructures.


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ÄÉÃ×Á£×Ó£¨Nanaparticle£¬NP£©ºÍÁ¿×Óµã(
Quantum
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Chemistry
¡·£¨Edited by Kenneth J. Klabunde£¬2001 John Wiley£©¹ØÓÚÕâЩÃû³ÆµÄ¶¨Ò壺
Cluster
    A collection of units (atoms
or reactive molecules) of up to about 50 units. Cluster compounds are
such moieties surrounded by a ligand shell that allows isolation of a molecular
species (stable, isolable, soluble).

Colloid     A stable liquid phase
containing particles in the 1-1000 nm range. A colloidal particle is one such
1-1000 nm sizes particle.

Nanoparticle
    A solid particle in the
1-1000 nm range that could be noncrystalline, an aggregate of crystallites , or
a single crystallite.

Nanocrystal     A solid particle that
is a single crystal in the nanometer size range.

Nanostructured
or nanoscale material
     Any solid material
that has a nanometer dimension; three dimensions
¨C
particles; two dimensions ¨C thin films; one dimension ¨C thin
wire.

Nanophase
material

    The same as
nanostructured material.

Quantum
dot

    A particle that
exhibits a size quantization effect in at least one
dimension.


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ASAP
of Journal
of the American Chemical Society


Formation
of Nearly Monodisperse In2O3 Nanodots and Oriented-Attached Nanoflowers:
Hydrolysis and Alcoholysis vs Pyrolysis


Arun
Narayanaswamy,Huifang
Xu,Narayan Pradhan,Myeongseob Kim,Xiaogang
Peng
Contribution
from the Department of Chemistry and Biochemistry, University of Arkansas,
Fayetteville, Arkansas 72701, and Department of Geology and Geophysics, and
Materials Science Program, University of Wisconsin, Madison, Wisconsin 53706

Received
April 20, 2006







Single
crystalline and nearly monodisperse In2O3 nanocrystals
with both dot and flower shapes were synthesized in a simple reaction system.
This system used indium carboxylates as the precursors with or without alcohol
as the activating reagents in a hydrocarbon solvent under elevated temperatures.
Limited ligand protection (LLP) led to three-dimensional (3D) oriented
attachment of nanodots, resulting in 3D nanoflowers. When the system had
sufficient ligand protection for the nanocrystals, nanodots were found to be the
stable products. The diameters of nearly monodisperse nanodots and nanoflowers
were varied in a range from ~5 to ~15 nm and ~15 to ~60 nm, respectively. The
simple reaction system made it possible to have a systematic study of the
reaction mechanisms along with the growth kinetics of nanocrystals. Hydrolysis
and alcoholysis were identified as the major paths for this system, as opposed
to pyrolysis. Both nearly monodispersed nanodots and nanoflowers can be made
through either of the reaction pathways. Hydrolysis was found as a reversible
pathway, and alcoholysis was confirmed to be irreversible. Consequently, a
sufficient amount of alcohol was able to force the yield of nanocrystals, both
dots and flowers, to unity.

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