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Aluminum nanoparticles capped by polymerization of alkyl-substituted epoxides: ratio-dependent stability and particle size.
Hammerstroem, Douglas W; Burgers, Mark A; Chung, Stephen W; Guliants, Elena A; Bunker, Christopher E; Wentz, Katherine M; Hayes, Sophia E; Buckner, Steven W; Jelliss, Paul A.
Affiliation
  • Hammerstroem DW; Department of Chemistry, Saint Louis University, 3501 Laclede Avenue, Saint Louis, Missouri 63103, USA.
Inorg Chem ; 50(11): 5054-9, 2011 Jun 06.
Article in En | MEDLINE | ID: mdl-21563767
We report here on the polymerization of epoxide monomers on incipient aluminum nanoparticle cores and the effects of changing the epoxide-capping precursor and the metallic monomer ratio on the resultant stability and particle size of passivated and capped aluminum nanoparticles. When altering the ratio of aluminum to cap monomer precursor, nanoparticles capped with epoxydodecane, epoxyhexane, and epoxyisobutane show a clear decreasing trend in stability with decreasing alkane substituent length. The nanoparticle core size was unaffected by cap ratio or composition. PXRD (powder X-ray diffraction) and DSC/TGA (differential scanning calorimetry/thermal gravimetric analysis) confirm the presence of successfully passivated face-centered cubic (fcc) aluminum nanoparticles. We also report preliminary results from ATR-FTIR (attenuated total reflectance-Fourier transform infrared), (13)C CPMAS (cross-polarization/magic-angle spinning), and (27)Al MAS solid-state NMR (nuclear magnetic resonance) measurements. The most stable aluminum nanoparticle-polyether core-shell nanoparticles are found at an Al:monomer mole ratio of 10:1 with an active Al(0) content of 94%.

Full text: 1 Database: MEDLINE Language: En Journal: Inorg Chem Year: 2011 Type: Article Affiliation country: United States

Full text: 1 Database: MEDLINE Language: En Journal: Inorg Chem Year: 2011 Type: Article Affiliation country: United States