Preparation of hydrosol suspensions of elemental and core-shell nanoparticles by co-deposition with water vapour from the gas-phase in ultra-high vacuum conditions

被引:24
作者
Binns, Chris [1 ]
Prieto, Pilar [2 ]
Baker, Stephen [1 ]
Howes, Paul [1 ]
Dondi, Ruggero [3 ]
Burley, Glenn [4 ]
Lari, Leonardo [5 ,6 ]
Kroeger, Roland [5 ]
Pratt, Andrew [5 ]
Aktas, Sitki [1 ]
Mellon, John K. [7 ]
机构
[1] Univ Leicester, Dept Phys & Astron, Leicester LE1 7RH, Leics, England
[2] Univ Autonoma Madrid, Dept Fis Aplicada C 12, E-28049 Madrid, Spain
[3] Univ Leicester, Dept Chem, Leicester LE1 7RH, Leics, England
[4] Univ Strathclyde, Dept Pure & Appl Chem, Glasgow G1 1XL, Lanark, Scotland
[5] Univ York, Dept Phys, York YO10 5DD, N Yorkshire, England
[6] York JEOL Nanoctr, York YO10 5BR, N Yorkshire, England
[7] Univ Leicester, Dept Canc Studies & Mol Med, Leicester LE1 7RH, Leics, England
关键词
Magnetic nanoparticle hyperthermia; Gas phase synthesis; Core-shell nanoparticles; MAGNETIC NANOPARTICLES; IRON NANOPARTICLES; AGGREGATION SOURCE; HYPERTHERMIA; CONSTRUCTION; ADSORPTION; SIMULATION; CLUSTERS; CANCER; SILVER;
D O I
10.1007/s11051-012-1136-6
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
We report a new method to produce liquid suspensions of nanoparticles by co-deposition with water vapour from the gas-phase in ultra-high vacuum (UHV) conditions. The water is injected from outside the vacuum as a molecular beam onto a substrate maintained at 77 K and forms an ice layer with a UHV vapour pressure. Molecular dynamics simulations confirm that the nanoparticles are soft-landed close to the surface of the growing ice layer. We show that the un-agglomerated size distribution within the liquid is similar to the gas-phase size distribution and demonstrate that the inclusion of surfactants in the injected water prevents agglomeration. The method allows the flexibility and tight size control available with gas-phase production methods to be applied to making nanoparticle suspensions with any desired properties. This is important for practical applications, especially in medicine. We have extended the method to include core-shell nanoparticles, in which there is flexible control over the core size and shell thickness and free choice of the material in either. Here, we report the production of suspensions of Cu, Ag and Au elemental nanoparticles and Fe@Au and Fe@Fe-oxide core-shell nanoparticles with diameters in the range 5-15 nm. We demonstrate the power of the method in practical applications in the case of Fe@Fe-oxide nanoparticles, which have a specific absorption rate of an applied oscillating magnetic field that is significantly higher than available Fe-oxide nanoparticle suspensions and the highest yet reported. These will thus have a very high-performance in the treatment of tumours by magnetic nanoparticle hyperthermia.
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页数:16
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共 57 条
[11]  
Binsted, 1998, EXCURV98 DARESBURY L
[12]  
Boatman EM, 2005, J CHEM EDUC, V82, P1697
[13]   A size-selective synthesis of air stable colloidal magnetic cobalt nanoparticles [J].
Bönnemann, H ;
Brijoux, W ;
Brinkmann, R ;
Matoussevitch, N ;
Waldöfner, N ;
Palina, N ;
Modrow, H .
INORGANICA CHIMICA ACTA, 2003, 350 :617-624
[14]   Production of bimetallic clusters by a dual-target dual-laser vaporization source [J].
Bouwen, W ;
Thoen, P ;
Vanhoutte, F ;
Bouckaert, S ;
Despa, F ;
Weidele, H ;
Silverans, RE ;
Lievens, P .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2000, 71 (01) :54-58
[15]   Harnessing the Extracellular Bacterial Production of Nanoscale Cobalt Ferrite with Exploitable Magnetic Properties [J].
Coker, Victoria S. ;
Telling, Neil D. ;
van der Laan, Gerrit ;
Pattrick, Richard A. D. ;
Pearce, Carolyn I. ;
Arenholz, Elke ;
Tuna, Floriana ;
Winpenny, Richard E. P. ;
Lloyd, Jonathan R. .
ACS NANO, 2009, 3 (07) :1922-1928
[16]   Explosive boiling of water films adjacent to heated surfaces: A microscopic description [J].
Dou, YS ;
Zhigilei, LV ;
Winograd, N ;
Garrison, BJ .
JOURNAL OF PHYSICAL CHEMISTRY A, 2001, 105 (12) :2748-2755
[17]   Synthesis and optical properties of silver nanoparticles and arrays [J].
Evanoff, DD ;
Chumanov, G .
CHEMPHYSCHEM, 2005, 6 (07) :1221-1231
[18]   An experimental station for advanced research on condensed matter under extreme conditions at the European Synchrotron Radiation Facility-BM29 beamline [J].
Filipponi, A ;
Borowski, M ;
Bowron, DT ;
Ansell, S ;
Di Cicco, A ;
De Panfilis, S ;
Itiè, JP .
REVIEW OF SCIENTIFIC INSTRUMENTS, 2000, 71 (06) :2422-2432
[19]   Magnetic properties of maghemite nanoparticle systems: surface anisotropy and interparticle interaction effects [J].
Fiorani, D ;
Testa, AM ;
Lucari, F ;
D'Orazio, F ;
Romero, H .
PHYSICA B-CONDENSED MATTER, 2002, 320 (1-4) :122-126
[20]  
FOILES SM, 1986, PHYS REV B, V33, P7983, DOI 10.1103/PhysRevB.33.7983