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Triaxial X-Ray Diffraction Method and its Application to Monitor Residual Stress in Surface Layers after High-Feed Milling

References [1] B. Griffiths, Manufacturing Surface Technology: Surface Integrity & Functional Performance, Penton Press, 256 p., (2001) [2] W. Grzesik, Advanced Machining Processes of Metallic Materials: Theory, Modelling and Applications, Elsevier, 446 p., (2008) [3] A. Czan, E. Tillova, J. Semcer, J. Pilc, Surface and subsurface residual stresses after machining and their analysis by x-ray diffraction, Communications - Scientific Letters of the University of Zilina, p. 69-76, (2013) [4] D

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Investigation Of Helium Implanted Fe–Cr Alloys By Means Of X–Ray Diffraction And Positron Annihilation Spectroscopy

276 No. 1-3 (2000), 123–142. [20] MARQUES, M. J.—PINA, J.—DIAS, A. M.—LEBRUN, J. L.—FEUGEAS, J. : X-ray diffraction characterization of ion-implanted austenitic stainless steel, Surface and Coatings Technology 95 No. 1 (2015), 8–16.

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X-ray diffraction and Mössbauer spectroscopy studies of a mechanosynthesized Fe75B25 alloy

Abstract

In this work, the process of formation of metastable phases was investigated for the Fe75B25 composition. Mechanical synthesis was performed in a MAPF-2M high-energy planetary ball mill under an argon atmosphere. X-ray diffraction (XRD), differential scanning calorimetry (DSC), and Mössbauer spectroscopy (MS) were applied to recognize the phases. After 6 h of milling, the material consisted of two phases, that is, metastable tetragonal t-Fe2B and amorphous phases. During further thermal processing, the metastable phase was transformed into the stable Fe2B phase.

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Vermiculite With Ag and Cu Used as an Antibacterial Nanofiller in Polyethylene/ Vermikulit S Ag A Cu Použitý Jako Antibakteriální Nanoplnivo V Polyethylenu

-80-87294-35-2. [16] KNEIFLOVÁ, J. Hodnocení baktericidní účinnosti dezinfekčních prostředků suspenzní mikrometodou. (Evaluation of the antibacterial effect of disinfectants using a suspension micro-method). Čs. epidemiologie, mikrobiologie a imunologie. 1988, XXXVII, pp. 97-104. [17] WALKER, G. F. Mechanism of dehydration of Mg-vermiculite. Clays and Clay Minerals. 1956, IV, pp. 101-115. [18] MARCOS, C., ARANGO, Y. C., RODRIGUEZ, I. X-ray diffraction studies of the thermal behaviour of commercial vermiculites. Applied Clay Science. 2009, XLII, pp

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Structural and dielectric studies of Mg2+ substituted Ni–Zn ferrite

J., W ijn H.P.J., Ferrites , Philips’ Technical Library, Eindhoven, 1959, p. 149. [8] L akhani V.K, P athak T.K., V asoya N.H., M odi K.B., Solid State Sci. , 13 (3), (2011), 539. [9] C ullity B.D., Elements of X-ray Diffraction , Addison-Wesley Publishing Company, Massachusetts, 1978. [10] W ei Q.-M., L i J.-B., C hen Y.-J., H an Y.-S., Mater. Charact. , 47 (2001), 247. [11] M ohammed K.A., A l -R awas A.D., G ismelseed A.M., S ellai A., W idatallah H.M., Y ousif A., E lzain M.E., S hongwe M., Physica B , 407, (2012

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Parametric optimization of NiFe2O4 nanoparticles synthesized by mechanical alloying

.H., Metall. Mater. Trans. A, 26 (1995), 2389. http://dx.doi.org/10.1007/BF02671252 [17] Abdellaoui M., Gaffet E., J. Alloy. Compd., 209 (1994), 351. http://dx.doi.org/10.1016/0925-8388(94)91124-X [18] Garcia-diaz A., Philips D.T., Principles of experimental design and analysis, Chapman and Hall, London, 1995. [19] Montgomery D.C., Design and analysis of experiments, 4th ed., John Wiley and Sons, New York, 1997. [20] Klug H.P., Alexander L.E., X-ray Diffraction

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Preparation and characterization of cobalt and copper oxide nanocrystals

. [6] S askia A.G., Chem. Soc. Rev ., 269 (1997), 233. [7] J adhav S., G aikwad S., N imse M., R ajbhoj A., J. Clust. Sci ., 22 (2011), 121. [8] S ankar R., M anikandan P., M alarvizhi V., F athima T., S hivashangari K.S., R avikumar V., Spectrochim. Acta Mol. Biomol. Spectrosc ., 121 (2014) 746. [9] Y ao W.T., Y u S.H., Z hou Y., J iang J., W u Q.S., Z hang L., J iang J., J. Phys. Chem. B , 109 (2005), 14016. [10] K lug H., A lexander L., X-ray Diffraction Procedures , Wiley, New York, 1962, p. 125. [11] D as

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Internal Structure Quality Control of Solid Pharmaceuticals. A Comparative Study

Racemic Ibuprofen. Pharmaceut Res. 2013;30(1):81-89. 8. Kotar A, Kotar M, Sketa P, Plavec J. Potential of Solid-state NMR and SEM in Characterization of Tablets of Ibuprofen. Curr Pharm Anal. 2015;11(2):124-130. 9. Rossi P, Macedi E, Paoli P, et al. Solid Solid Transition between Hydrated Racemic Compound and Anhydrous Conglomerate in Na-Ibuprofen: A Combined X-ray Diffraction, Solid-State NMR, Calorimetric, and Computational Study. Cryst Growth Des. 2014;14(5):2441-2452. 10. Ahuja S, Scypinski S. Handbook of Modern

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DNA – DOPC – gemini surfactants complexes: effect of ionic strength

Relevance in Gene Therapy. Biomacromolecules. 2012;13:3926–3937. [26] Pietralik Z, Krzyszton R, Kida W, Andrzejewska W, Kozak M. Structure and Conformational Dynamics of DMPC/Dicationic Surfactant and DMPC/Dicationic Surfactant/DNA Systems. Int J Mol Sci. 2013;14:7642–7659. [27] Pullmannová P, Uhríková D, Funari SS, et al. Polymorphic phase behavior of DNA – DOPE – GEMINI surfactant aggregates: a small angle x-ray diffraction. Acta Fac Pharm Univ Comenianae. 2008;55:170–182. [28] Pullmannová P, Funari SS, Devínsky F, Uhríková D. The DNA-DNA spacing in gemini

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Synthesis and characterization of γ-glycine – a nonlinear optical single crystal for optoelectronic and photonic applications

numerous reports on this compound, the extraordinary characteristics of gamma glycine force the researches to perform deeper studies on its properties. The main aim of this work is to explore and shed light into anisotropic nature as well as the phase matching properties. Herein, we report the anisotropic behavior of gamma glycine in mechanical and laser damage threshold properties and the dependence of particle size with respect to second harmonic generation. Apart from these studies, single and powder X-ray diffraction analyses, UV-Vis spectroscopy, FT-IR analysis

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