Publications
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Filters: Author is Wang, Z.L. [Clear All Filters]
Alloy formation of gold-silver nanoparticles and the dependence of the plasmon absorption on their composition. Journal of Physical Chemistry B. 1999 ;103:3529-3533.
. Crystallographic facets and shapes of gold nanorods of different aspect ratios. Surface Science. 1999 ;440:L809-L814.
. “Cubic” Colloidal Platinum Nanoparticles. Chemistry of Materials [Internet]. 1996 ;8(6):1161 - 1163. Available from: http://dx.doi.org/10.1021/cm9601190
. Effect of the lattice crystallinity on the electron-phonon relaxation rates in gold nanoparticles. Journal of Physical Chemistry C. 2007 ;111:10751-10757.
. Electron dynamics in gold and gold-silver alloy nanoparticles: The influence of a nonequilibrium electron distribution and the size dependence of the electron-phonon relaxation. Journal of Chemical Physics. 1999 ;111:1255-1264.
. How does a gold nanorod melt?. Journal of Physical Chemistry B. 2000 ;104:7867-7870.
. Kinetically controlled growth and shape formation mechanism of platinum nanoparticles. Abstracts of Papers of the American Chemical Society. 1998 ;215:U176-U176.
. A new catalytically active colloidal platinum nanocatalyst: The multiarmed nanostar single crystal. Journal of the American Chemical Society. 2008 ;130:4590-+.
. Self-assembly of gold nanorods. Journal of Physical Chemistry B. 2000 ;104:8635-8640.
. Shape transformation and surface melting of cubic and tetrahedral platinum nanocrystals. Journal of Physical Chemistry B. 1998 ;102:6145-6151.
. Shape-Controlled Synthesis of Colloidal Platinum Nanoparticles. Science (New York, N.Y.). 1996 ;272(5270):1924-6.
. Steps, ledges and kinks on the surfaces of platinum nanoparticles of different shapes. Surface science. 1997 ;380(2-3):302-310.
. Surface reconstruction of the unstable 110 surface in gold nanorods. Journal of Physical Chemistry B. 2000 ;104:5417-5420.
. Temperature-dependent size-controlled nucleation and growth of gold nanoclusters. Journal of Physical Chemistry A. 1999 ;103:10255-10259.
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