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Energy and Soft Materials and the Development of Cryogenic Techniques for Studying Them
Roccaforte, F. et al. ., Emerging trends in wide band gap semiconductors (SiC and GaN) technology for power devices. Microelectron. Eng. 187, 66-77 (2018).Google Scholar
2
Amano, H. et al. ., The 2018 GaN power electronics roadmap. J Phys D Appl Phys51, (2018).Google Scholar
3
Saotome, H., Azuma, K., Kizuka, H., Tanaka, T., Properties of dynamic magnetic loss of ferrite. AIP Advances8, 056103 (2018).10.1063/1.5003858CrossRefGoogle Scholar
4
Vreeland, E. C., et al. ., Enhanced Nanoparticle Size Control by Extending LaMer's Mechanism. Chem. Mater. 27, 6059-6066 (2015).10.1021/acs.chemmater.5b02510CrossRefGoogle Scholar
5
Huber, D. L., Synthesis, properties, and applications of iron nanoparticles. Small1, 482-501 (2005).10.1002/smll.200500006CrossRefGoogle ScholarPubMed
6
Cullity, B., Introduction to Magnetic Materials. Addison-Wesley, Ed., (Addison-Wesley Pub. Co., Reading, Massachusetts, 1972).Google Scholar
7
Nedelkoski, Z. et al. ., Origin of reduced magnetization and domain formation in small magnetite nanoparticles. Sci Rep7, 45997 (2017).10.1038/srep45997CrossRefGoogle ScholarPubMed
8
Monson, T. C., et al. ., Large enhancements of magnetic anisotropy in oxide-free iron nanoparticles. J. Magn. Magn. Mater. 331, 156-161 (2013).10.1016/j.jmmm.2012.11.026CrossRefGoogle Scholar