NMR characterization of phosphonic acid capped SnO2 nanoparticles

被引:81
作者
Holland, Gregory P. [1 ]
Sharma, Ramesh
Agola, Jacob O.
Amin, Samrat
Solomon, Virgil C.
Singh, Poonam
Buttry, Daniel A.
Yarger, Jeffery L.
机构
[1] Arizona State Univ, Dept Chem & Biochem, Tempe, AZ 85287 USA
[2] Univ Wyoming, Dept Chem 3838, Laramie, WY 82071 USA
关键词
D O I
10.1021/cm062821u
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Phosphonic acid capped SnO2 nanoparticles with diameters less than 5 nm were synthesized and characterized with multinuclear solution and solid-state magic angle spinning (MAS) NMR. Two types of phosphonic acid ligands were used to derivatize the SnO2 surface, producing (i) water soluble SnO2 nanoparticles capped with 2-carboxyethanephosphonic acid (CEPA) and (ii) insoluble SnO2 nanoparticles capped with phenylphosphonic acid (PPA). Multiple surface environments were observed with P-31 solution and solid-state MAS NMR for both capping agents. The P-31 resonances of derivatized SnO2 nanoparticles display isotropic chemical shifts that are more shielded compared to the native phosphonic acids. This observation is indicative of a strong interaction between the phosphonic acid group and the SnO2 surface. H-1 MAS NMR spectra display a complete absence of the acidic protons of the phosphonic acid groups, strongly supporting the formation of P-O-Sn linkages. H-1 -> P-31 cross polarization (CP) build-up behavior confirms the absence of the vast majority of phosphonic acid protons. Some of the build-up curves displayed oscillations that could be fit to extract the magnitude of the H-1-P-31 dipolar coupling constant. The dipolar coupling can then be used to calculate the distance between phosphorus and the close proximity protons. The results presented herein indicate primarily bi- and tridentate phosphonic acid bonding configuration at the SnO2 surface, in both CEPA and PPA capped nanoparticles.
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收藏
页码:2519 / 2526
页数:8
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共 54 条
[41]   Solid state NMR studies of photoluminescent cadmium chalcogenide nanoparticles [J].
Ratcliffe, Christopher I. ;
Yu, Kui ;
Ripmeester, John A. ;
Zaman, Md. Badruz ;
Badarau, Cristina ;
Singh, Shanti .
PHYSICAL CHEMISTRY CHEMICAL PHYSICS, 2006, 8 (30) :3510-3519
[42]   QUANTUM SIZE EFFECTS IN THE REDOX POTENTIALS, RESONANCE RAMAN-SPECTRA, AND ELECTRONIC-SPECTRA OF CDS CRYSTALLITES IN AQUEOUS-SOLUTION [J].
ROSSETTI, R ;
NAKAHARA, S ;
BRUS, LE .
JOURNAL OF CHEMICAL PHYSICS, 1983, 79 (02) :1086-1088
[43]   SIZE EFFECTS IN THE EXCITED ELECTRONIC STATES OF SMALL COLLOIDAL CDS CRYSTALLITES [J].
ROSSETTI, R ;
ELLISON, JL ;
GIBSON, JM ;
BRUS, LE .
JOURNAL OF CHEMICAL PHYSICS, 1984, 80 (09) :4464-4469
[44]   Solid-state 31P NMR study of phosphonate binding sites in guanidine-functionalized, molecular imprinted silica xerogels [J].
Sasaki, DY ;
Alam, TM .
CHEMISTRY OF MATERIALS, 2000, 12 (05) :1400-1407
[45]   LARGE CLUSTERS AND COLLOIDS - METALS IN THE EMBRYONIC STATE [J].
SCHMID, G .
CHEMICAL REVIEWS, 1992, 92 (08) :1709-1727
[46]   A 2D-EXCHANGE SEPARATED LOCAL FIELD (EXSLF) EXPERIMENT - AN APPLICATION TO A C-13-H-1 ISOLATED SPIN SYSTEM IN THE SOLID-STATE [J].
TAKEGOSHI, K ;
MCDOWELL, CA .
JOURNAL OF CHEMICAL PHYSICS, 1987, 86 (11) :6077-6084
[47]   Monolayers in three dimensions: NMR, SAXS, thermal, and electron hopping studies of alkanethiol stabilized gold clusters [J].
Terrill, RH ;
Postlethwaite, TA ;
Chen, CH ;
Poon, CD ;
Terzis, A ;
Chen, AD ;
Hutchison, JE ;
Clark, MR ;
Wignall, G ;
Londono, JD ;
Superfine, R ;
Falvo, M ;
Johnson, CS ;
Samulski, ET ;
Murray, RW .
JOURNAL OF THE AMERICAN CHEMICAL SOCIETY, 1995, 117 (50) :12537-12548
[48]   Dipolar oscillations in cross-polarized peptide samples in oriented lipid bilayers [J].
Tian, F ;
Cross, TA .
JOURNAL OF MAGNETIC RESONANCE, 1997, 125 (01) :220-223
[49]   NMR study of InP quantum dots: Surface structure and size effects [J].
Tomaselli, M ;
Yarger, JL ;
Bruchez, M ;
Havlin, RH ;
deGraw, D ;
Pines, A ;
Alivisatos, AP .
JOURNAL OF CHEMICAL PHYSICS, 1999, 110 (18) :8861-8864
[50]   Nanostructure SnO2 and supported Au catalysts:: Synthesis, characterization, and catalytic oxidation of CO [J].
Wang, SR ;
Huang, J ;
Zhao, YQ ;
Wang, SP ;
Wu, SH ;
Zhang, SM ;
Huang, WP .
MATERIALS LETTERS, 2006, 60 (13-14) :1706-1709