| High-Energy Permanent Magnets for Hybrid Vehicles and Alternative Energy Uses | |
| Hadjipanayis, George C. ; McCallum, William R. ; Sellmyer, David J. ; Harris, Vincent ; Carpenter, Everett E. ; Liu, Jinfang | |
| University of Delaware, Newark, DE | |
| 关键词: 77 Nanoscience And Nanotechnology; Surface Functionalization; Nanocomposite Magnets; 75 Condensed Matter Physics, Superconductivity And Superfluidity; 36 Materials Science; | |
| DOI : 10.2172/1110789 RP-ID : DOE-DELAWARE-0000046 RP-ID : AR0000046 RP-ID : 1110789 |
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| 美国|英语 | |
| 来源: UNT Digital Library | |
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【 摘 要 】
The report summarizes research undertaken by a multidisciplinary team aimed at the development of the next generation high-energy permanent magnets. The principal approach was relied on bottom-up fabrication of anisotropic nanocomposite magnets. Our efforts resulted in further development of the theoretical concept and fabrication principles for the nanocomposites and in synthesis of a range of rare-earth-based hard magnetic nanoparticles. Even though we did not make a breakthrough in the assembly of these hard magnetic particles with separately prepared Fe(Co) nanoparticles and did not obtain a compact nanocomposite magnet, our performed research will help to direct the future efforts, in particular, towards nano-assembly via coating, when the two phases which made the nanocomposite are first organized in core-shell-structured particles. Two other approaches were to synthesize (discover) new materials for the traditional singe-material magnets and the nanocomposite magnets. Integrated theoretical and experimental efforts lead to a significant advance in nanocluster synthesis technique and yielded novel rare-earth-free nanostructured and nanocomposite materials. Examination of fifteen R-Fe-X alloy systems (R = rare earth), which have not been explored earlier due to various synthesis difficulties reveal several new ferromagnetic compounds. The research has made major progress in bottom-up manufacturing of rare-earth-containing nanocomposite magnets with superior energy density and open new directions in development of higher-energy-density magnets that do not contain rare earths. The advance in the scientific knowledge and technology made in the course of the project has been reported in 50 peer-reviewed journal articles and numerous presentations at scientific meetings.
【 预 览 】
| Files | Size | Format | View |
|---|---|---|---|
| 1110789.pdf | 258KB |
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