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  • Electronic Resource  (2)
  • Liquid phase (wet) silylation  (1)
  • PACS. 68.55.-a Thin film structure and morphology - 68.65.+g Low-dimensional structures (superlattices, quantum well structures, multilayers): structure, and nonelectronic properties - 75.70.-i Magnetic films and multilayers  (1)
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  • Electronic Resource  (2)
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  • 1
    Electronic Resource
    Electronic Resource
    Amsterdam : Elsevier
    Microelectronic Engineering 25 (1994), S. 75-90 
    ISSN: 0167-9317
    Keywords: Liquid phase (wet) silylation ; Nuclear magnetic resonance spectroscopy (NMR) ; Reactive ion etching (RIE) ; Rutherford backscattering spectroscopy (RBS) ; Scanning electron microscopy (SEM) ; Submicron process ; Surface imaging
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Electrical Engineering, Measurement and Control Technology
    Type of Medium: Electronic Resource
    Library Location Call Number Volume/Issue/Year Availability
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  • 2
    ISSN: 1434-6036
    Keywords: PACS. 68.55.-a Thin film structure and morphology - 68.65.+g Low-dimensional structures (superlattices, quantum well structures, multilayers): structure, and nonelectronic properties - 75.70.-i Magnetic films and multilayers
    Source: Springer Online Journal Archives 1860-2000
    Topics: Physics
    Notes: Abstract: This study is dedicated to the growth of bcc Mn by molecular beam epitaxy, in order to look at the magnetic properties of bcc Mn near room temperature. For this purpose, Mn is deposited on bcc MxV1-x(001) alloy lattices (M = Fe or Nb) for which the lattice spacing is tunable by varying the concentration x. We first show that the parameter of the MxV1-x alloy's buffer layers can be adjusted from 2.95 Å to 3.3 Å depending on x and M. Three different structures in Mn films grown on these buffer layers are observed depending on the in-plane spacing of the initial MxV1-x lattice. Thick Mn films are always found to grow epitaxially in the Mn structure. For moderate thicknesses larger than 4 atomic planes, Mn grows in an unidentified structure. Finally, up to four deposited atomic planes, Mn is found to grow in a tetragonal structure close to a bcc one on Fe(001), FexV1-x(001) and NbxV1-x(001) for . This tetragonal structure is shown to be a distorsion of a Mn bcc structure with . Except for ultra-thin Mn films deposited on Fe(001), no macroscopic magnetization is detected in our strained bcc Mn samples. These results are compared to theoretical predictions.
    Type of Medium: Electronic Resource
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