Патент США № | 8414678 |
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Автор(ы) | Kumar и др. |
Дата выдачи | 09 апреля 2013 г. |
A method for generating metallic nanomaterials using acetylenic-bridged metal-carbonyl complexes as a precursor allows control of nanoparticle properties. The novel method produced metallic nanomaterials resistant to oxidation.
Авторы: | Challa S. S. R. Kumar (Baton Rouge, LA), Rohini M. de Silva (Dehiwela, LK), Josef Hormes (Baton Rouge, LA) | ||||||||||
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Патентообладатель: |
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Заявитель: | Board of Supervisors of Lousiana State University And Agricultural and Mechanical College (Baton Rouge, LA) N/A ( |
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ID семейства патентов | 39184608 | ||||||||||
Номер заявки: | 12/440,542 | ||||||||||
Дата регистрации: | 14 сентября 2007 г. |
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PCT Filed: | September 14, 2007 | ||||||||||
PCT No.: | PCT/US2007/078498 | ||||||||||
371(c)(1),(2),(4) Date: | February 05, 2010 | ||||||||||
PCT Pub. No.: | WO2008/034062 | ||||||||||
PCT Pub. Date: | March 20, 2008 |
Document Identifier | Publication Date | |
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US 20100135845 A1 | Jun 3, 2010 | |
Application Number | Filing Date | Patent Number | Issue Date | ||
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60845115 | Sep 15, 2006 | ||||
Класс патентной классификации США: | 75/362; 75/351; 75/370 |
Класс совместной патентной классификации: | B22F 9/305 (20130101); C22C 19/07 (20130101); B22F 1/0018 (20130101); B22F 2998/00 (20130101); B22F 2998/00 (20130101) |
Класс международной патентной классификации (МПК): | B22F 9/00 (20060101); B22F 9/24 (20060101) |
Область поиска: | ;75/343,348,351,362-374,392,626,627,722 ;977/775,777,810 ;423/138-154 |
6262129 | July 2001 | Murray et al. |
6846345 | January 2005 | Keller et al. |
2003/0175199 | September 2003 | Iyer et al. |
2004/0231463 | November 2004 | Shiraishi et al. |
2005/0196454 | September 2005 | Baranauskas, III et al. |
Heinz W. Sternberg, Harold Greenfield, Robert A. Friedel, John Wotiz, Raymond Markey, Irving Wender, "A New Type of Metallo-Organic Complex Derived from Dicobalt Octacarbonyl and Acetylenes," Journal of the American Chemical Society, vol. 76, Iss. 5, pp. 1457-1458, published Mar. 5, 1954. cited by examiner . Behrens, Silke et al., "Air-stable Co-, Fe-, and Fe/Co-Nanoparticles and Ferrofluids," Phys. Chem., vol. 220, pp. 3-40 (2006). cited by applicant . Billas, I.M. et al., "Magnetism of Fe, Co and Ni clusters in molecular beams," J Magn. Magn. Mater, vol. 168, pp. 64-84 (1997). cited by applicant . Bonnemann, R.A. et al., "Air stable Fe and Fe-Co magnetic fluids--synthesis and characterization," Applied Organometallic Chemistry, vol. 19, pp. 790-796 (2005). cited by applicant . Cha, S. et al., "Ferromagnetic cobalt nanodots, nanorices, nanowires and nanoflowers by polyol process," J. Mater. Res., vol. 20, No. 8, pp. 2148-2153 (2005). cited by applicant . Dinega, D. P. et al., "A Solution-Phase Chemical Approach to a New Crystal Structure of Cobalt," Chem. Int. Ed., vol. 38, No. 12, pp. 1788-1791 (1999). cited by applicant . Dumestre, F. et al., "Shape Control of Thermodynamically Stable Cobalt Nanorods through Organometallic Chemistry," Andew. Chem. Int. Ed., vol. 41, No. 22, pp. 4286-4289 (2002). cited by applicant . Huang, J. Y et al., "Allotropic Transformation of Cobalt Induced by Ball Milling," Acta Mater, vol. 44, No. 3, pp. 1201-1209 (1996). cited by applicant . Kitakami, O. et al., "Size effect on the crystal phase of cobalt fine particles," Phys. Rev. B., vol. 56, No. 21, pp. 13849-13854 (1997). cited by applicant . Masala, O. et al., "Synthesis Routes for Large Volumes of Nanoparticles," Annu. Rev. Mater. Res., vol. 34, pp. 41-81 (2004). cited by applicant . Murray, C. B. et al., "Colloidal synthesis of nanocrystals and nanocrystal superlattices" IBM J. Res. Dev, vol. 45, No. 1, pp. 47-56 (2001). cited by applicant . Leslie-Pelecky, D. L. et al., "Using High-Temperature Chemical Synthesis to Produce Metastable Nanostructured Cobalt," Chem. Mater, vol. 10, pp. 3732-3736 (1998). cited by applicant . Petit, C.; Pilen, Magn. Mater, et al., "Nanosize cobalt boride particles: control of the size and properties," J Magn. Magn. Mater, vol. 166, pp. 82-90 (1997). cited by applicant . Puntes, V. F. et al., "Synthesis, self-assembly, and magnetic behavior of a two-dimensional superlattice of single-crystal .epsilon.-Co nanoparticles," Appl. Phys. Lett,. vol. 78, No. 15, pp. 2187-2189 (2001). cited by applicant . Sato, H. et al., "Structure and magnetism of hcp-Co fine particles," J. Appl. Phys., vol. 81, No. 4, pp. 1858-1862 (1997). cited by applicant . Wang, Z. L. et al., "Polyhedral Shapes of Cobalt Nanocrystals and Their Effect on Ordered Nanocrystal Assembly," Adv. Mater., vol. 12, No. 24, pp. 1944-1946 (2000). cited by applicant . Yang, H. T. et al., "Self-assembly and magnetic properties of cobalt nanoparticles," Appl. Phys. Lett., vol. 82, No. 26, pp. p. 4729-4732 (2003). cited by applicant. |