Startseite Thermodynamic properties of liquid silver–indium–tin alloys determined from emf measurements
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Thermodynamic properties of liquid silver–indium–tin alloys determined from emf measurements

  • Dominika Jendrzejczyk-Handzlik , Wojciech Gierlotka und Krzysztof Fitzner
Veröffentlicht/Copyright: 11. Juni 2013
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Abstract

The thermodynamic properties of liquid Ag – Sn – In alloys were determined using solid oxide galvanic cells with zirconia electrolyte. The following galvanic cells were employed:

Re + kanthal, Agx – Iny – Sn(1−x−y),(In2O3)s.s//ZrO2 + (Y2O3)//NiO, Ni, Pt(I)

in the temperature range from 973 to 1273 K, and in the range of indium mole fraction from 0.3 to 0.8.

This limitation was imposed by the side reaction between tin in the liquid alloy and solid In2O3. It was also found that the liquid is in equilibrium with the solid solution of oxides. Calorimetric measurements of the heat of mixing were also carried out at constant temperature 1003 K and along one isopleth with XAg/XSn = 1/1.

The thermodynamic properties of the liquid phase were described by the Redlich – Kister – Muggianu formula and the phase relations in the ternary system were calculated. The results of calculations were compared with the experimental data which are available from different literature sources.


* Correspondence address, Dominika Jendrzejczyk-Handzlik, AGH University of Science and Technology, Mickiewicza Ave 30, 30-059 Krakow, Poland, Tel.: +48 12 617 41 25, E-mail:

References

[1] F.W.Gale, G.Becka, J.Badgett, G.Whitten, T.-Y.Pan, A.Grusd, B.Brauer, R.Lathrgo, J.Slattery, I.Anderson, J.Foley, A.Gickler, D.Napp, J.Mather, C.Olson: JOM53 (2001) 17.Suche in Google Scholar

[2] K.Suganuma: ESPEC Technology Rep. No13 (2002).Suche in Google Scholar

[3] G.Petzow, G.Effenberg (Eds.): Ternary Alloys v. 2, VCH (1988).Suche in Google Scholar

[4] T.-M.Korhonen, J.K.Kivilahti: J. Electon. Mat.27 (1998) 149.Suche in Google Scholar

[5] X.J.Liu, Y.Inohana, Y.Takaku, I.Ohnuma, R.Kainuma, K.Ishida, Z.Moser, W.Gasior, J.Pstrus: J. Electron. Mat.31 (2002) 1139.Suche in Google Scholar

[6] G.P.Vassilev, E.S.Dobrev, J.-C.Tedenac: J. Alloys Compd.339 (2005) 118.Suche in Google Scholar

[7] A.Milosavljevic, D.Zivkovic, J.Pavlovic: Novi Materijali1 (2006) 15.Suche in Google Scholar

[8] B.Gather, P.Schroter, R.Blachnik: Z. Metallkd.78 (1987) 280.Suche in Google Scholar

[9] T.Miki, N.Ogawa, T.Nagasaka, M.Hino: Materials Trans.42 (2001) 732.Suche in Google Scholar

[10] H.Flandorfer, C.Luef, U.Saeed: J. Non Cryst. Solids2007(in print).Suche in Google Scholar

[11] D.Jendrzejczyk, W.Gierlotka, K.Fitzner: Int. J. Mat. Res. (formerly Z. Metallkd.)97 (2006) 1519.Suche in Google Scholar

[12] D.Jendrzejczyk, K.Fitzner: Thermochim. Acta414 (2004) 115.Suche in Google Scholar

[13] E.T.Turkdogan: Physical Chemistry of High Temperature Technology, Academic Press New York (1980).Suche in Google Scholar

[14] I.Isomaki, M.Hamalainen, W.Gierlotka, B.Onderka, K.Fitzner: J. Alloys Compd.422 (2006) 173.Suche in Google Scholar

[15] A.Watson: Database of the Cost 531 Action.Suche in Google Scholar

[16] L.Bencze, A.Popovic: Final COST 531 meeting 16–18 May Vienna 2007Suche in Google Scholar

[17] Pure 4.4 SGTE Pure Elements (Unary) Database, Scientific Group Thermodate Europe, 1991–2006.Suche in Google Scholar

[18] Pandat 5.0 sofware, CompuTherm. LLC 437 Yellowstone Dr, Suite 217, Madison, WI 53719 USA, 2007.Suche in Google Scholar

Received: 2007-7-15
Accepted: 2008-5-14
Published Online: 2013-06-11
Published in Print: 2008-11-01

© 2008, Carl Hanser Verlag, München

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