Morphological characteristics of mechanically processed ZnO and MnO2 powder mixtures
暂无分享,去创建一个
M. V. Nikolić | M. Vlasova | M. Kakazey | M. Ristić | T. Tomila | M. Domínguez-Patiño | Gloria Dominguez-Patiño | Yolanda Enríquez-Méndez | Mary Cruz Reséndiz-Gonzalez
[1] W. Steger,et al. Die infrarotspektroskopische Charakterisierung von Braunsteinen , 2010 .
[2] J. García,et al. Is ball milling a worthy route to produce magnetic semiconductors , 2007 .
[3] M. Vlasova,et al. Reactionary processes during mechanical treatment of mixtures of ZnO and MnO2. I. Formation of defects and solid solution , 2007 .
[4] Katsuhisa Tanaka,et al. Room temperature ferromagnetic phase in ZnO-MnO2 system via solid-state reaction , 2007 .
[5] M. Meyers,et al. Mechanical properties of nanocrystalline materials , 2006 .
[6] M. Vlasova,et al. Solid‐State Reactivity of the ZnO‐xMn2O3 System During Heat Treatment , 2006 .
[7] J. L. Costa-Krämer,et al. Interface double-exchange ferromagnetism in the Mn-Zn-O system: new class of biphase magnetism. , 2005, Physical review letters.
[8] Wolfgang Peukert,et al. Monte Carlo simulation of aggregate morphology for simultaneous coagulation and sintering , 2004 .
[9] S. Ogale,et al. On the origin of high-temperature ferromagnetism in the low-temperature-processed Mn–Zn–O system , 2004, Nature materials.
[10] Z. Marinković,et al. Evolution of the microstructure of disperse ZnO powders obtained by the freeze-drying method , 2004 .
[11] B. Dabrowski,et al. Absence of room temperature ferromagnetism in bulk Mn-doped ZnO , 2004, cond-mat/0404186.
[12] B. Dabrowski,et al. Structural and magnetic properties of transition metal substituted ZnO , 2003, cond-mat/0312233.
[13] Parmanand Sharma,et al. Ferromagnetism above room temperature in bulk and transparent thin films of Mn-doped ZnO , 2003, Nature materials.
[14] B. J. Ennis,et al. Nucleation, growth and breakage phenomena in agitated wet granulation processes: a review , 2001 .
[15] H. Ohno,et al. Zener model description of ferromagnetism in zinc-blende magnetic semiconductors , 2000, Science.
[16] M. Kakazey,et al. Evolution of the microstructure of disperse Zinc-oxide during tribophysical activation , 1999 .
[17] N. Nakamori,et al. Generalized Theory of Average Dielectric Constant and Its Application to Infrared Absorption by ZnO Small Particles , 1979 .
[18] A. Lucas,et al. Aggregation effect on the infrared absorption spectrum of small ionic crystals , 1976 .
[19] N. Kakazei. Defective structure of fine periclase particles , 1974 .
[20] R. Roy,et al. The solubility of transition metal oxides in zinc oxide and the reflectance spectra of Mn2+ and Fe2+ in tetrahedral fields , 1966 .
[21] Wolfgang Peukert,et al. Prediction of aggregation kinetics based on surface properties of nanoparticles , 2005 .
[22] D. L. Zhang,et al. Processing of advanced materials using high-energy mechanical milling , 2004 .
[23] M. Senna,et al. Soft Mechanochemical Synthesis: A Basis for New Chemical Technologies , 2001 .
[24] P. Baláž,et al. Extractive metallurgy of activated minerals , 2000 .
[25] C. Koch,et al. Mechanical milling/alloying of intermetallics , 1996 .
[26] L. Alexander,et al. X-Ray diffraction procedures for polycrystalline and amorphous materials , 1974 .