Thermodynamic description of the ternary Pd–Sn–Zn system
-
Zuoan Li
, Sabine Knott und Adolf Mikula
Abstract
The thermodynamic properties of the liquid Pd–Sn–Zn ternary system were investigated, because the Sn–Zn alloy is a promising lead-free solder and Pd can be used as a substrate material. Using an appropriate galvanic cell, the partial free energies of Zn in liquid Pd–Sn–Zn alloys were determined as a function of concentration and temperature. Thermodynamic properties were obtained for 18 alloys. Their composition was situated on two cross-sections with the constant molar ratios of Pd: Sn = 1:3 and 1:9. The integral Gibbs free energy and the integral enthalpy for the ternary system at 1000 K were calculated by Gibbs–Duhem integration. For the liquid binary Pd–Sn system, some inconsistencies were found in previous CALPHAD results. Considering the latest experimental information, the interaction parameters of the liquid phase were reevaluated. The liquidus temperatures were also determined from EMF measurements.
References
[1] K.Suganuma: Current Opinion in Solid State and Materials Science5(2001)55.10.1016/S1359-0286(00)00036-XSuche in Google Scholar
[2] P.Terzieff, Z.Li, S.Knott, A.Mikula: Physica B388(2007)312.10.1016/j.physb.2006.06.133Suche in Google Scholar
[3] S.Karlhuber, K.L.Komarek, A.Mikula: Z. Metallkd.85(1994)307.10.1515/ijmr-1994-850505Suche in Google Scholar
[4] S.Karlhuber, A.Mikula, F.Sommer: Metall. Mater. Trans. B27(1996)921.10.1007/s11663-996-0005-zSuche in Google Scholar
[5] M.Peng, A.Mikula: J. Alloys Compd.247(1997)185.10.1016/S0925-8388(96)02575-3Suche in Google Scholar
[6] Y.Xie, H.Schicketanz, A.Mikula: Ber. Bunsenges. Phys. Chem.102(1998)1334.10.1002/bbpc.19981020946Suche in Google Scholar
[7] S.Knott, A.Mikula: Mater. Trans.43(2002)1868.10.2320/matertrans.43.1868Suche in Google Scholar
[8] Z.Li, S.Knott, A.Mikula: J. Electron. Mater.2007, article in press.Suche in Google Scholar
[9] T.B.Massalski, H.Okamoto, P.R.Subramanian, L.Kacprzak: 2nd ed.Binary alloy phase diagrams. Materials Park (OH) ASM International1990.Suche in Google Scholar
[10] S.Kou, Y.A.Chang: Acta Met.23(1975)1185.10.1016/0001-6160(75)90036-XSuche in Google Scholar
[11] W.W.Liang, Y.A.Chang, S.LauI.Gruk: Acta Met.21(1973)629.10.1016/0001-6160(73)90072-2Suche in Google Scholar
[12] Y.A.Chang: Treatise on Materials Science and Technology, Academic Press, New York4(1974)173.10.1016/S0161-9160(13)70085-1Suche in Google Scholar
[13] T.Chiang, H.Ipser, Y.A.Chang: Z. Metallkd.68(1977)141.10.1515/ijmr-1977-680211Suche in Google Scholar
[14] Z.Moser: Arch. Hutn.14(1969)269.10.2307/847554Suche in Google Scholar
[15] Z.Moser, W.Gasior: Bull. Acad. Pol. Sci.31(1983)19.Suche in Google Scholar
[16] A.F.Alabyshev, M.F.Landratov: Zh. Prikl. Khim.27(1954)851.Suche in Google Scholar
[17] W.Ptak: Arch. Hutn.5(1960)169.Suche in Google Scholar
[18] M.Fiorani, V.Valenti: Gazz. Chim. Ital.85(1955)607.Suche in Google Scholar
[19] O.J.Kleppa: J. Phys. Chem.59(1955)354.10.1021/j150526a018Suche in Google Scholar
[20] W.Olsen: Z. Metallkd.48(1957)1.10.1177/000494415700100305Suche in Google Scholar
[21] Z.Moser, K.Rzyman, S.Randzio: Bull. Acad. Pol. Sci.35(1987)461.Suche in Google Scholar
[22] E.Scheil, F.Wolf: Z. Metallkd.50(1959)229.10.1515/ijmr-1959-500408Suche in Google Scholar
[23] E.Scheil, D.Müller: Z. Metallkd.53(1962)389.10.1515/ijmr-1962-530609Suche in Google Scholar
[24] M.Lathrop, Y.A.Chang, T.Tefelske: Monatsh. Chem.103(1972)551.10.1007/BF00904954Suche in Google Scholar
[25] Y.A.Chang, G.C.Wilhelm, M.Lathrop, L.Gyuk: Acta Met.19(1971)795.10.1016/0001-6160(71)90136-2Suche in Google Scholar
[26] B.-J.Lee: Calphad20(1996)471.10.1016/S0364-5916(97)00009-6Suche in Google Scholar
[27] S.Fries, H.L.Lukas: COST 507, Thermochem. Database for Light Met. Alloys2(1998)288.Suche in Google Scholar
[28] G.H.Laurie, J.N.Pratt: Trans. Faraday Soc.60(1964)1391.10.1039/tf9646001391Suche in Google Scholar
[29] J.R.Guadagno, M.J.Pool: J. Phys. Chem.72(1968)2535.10.1021/j100853a046Suche in Google Scholar
[30] M.Mathon, M.Gambino, E.Hayer, M.Gaune-Escard, J.P.Bros: J. Alloys Compounds.285(1999)123.10.1016/S0925-8388(98)00855-XSuche in Google Scholar
[31] C.Luef, H.Flandorfer, H.Ipser: Thermochimica Acta417(2004)47.10.1016/j.tca.2004.01.019Suche in Google Scholar
[32] G.Ghosh: Metall. Mater. Trans. A30(1999)5.10.1007/s11661-999-0191-9Suche in Google Scholar
[33] J.Vizdal, A.Kroupa, J.Popovic, A.Zemanova: Adv. Eng. Mater.8(2006)164.10.1002/adem.200500248Suche in Google Scholar
[34] J.F.Elliott, J.Chipman: J. A. Chem. Soc.73(1951)2682.10.1021/ja01150a075Suche in Google Scholar
[35] R.Hultgren, P.D.Desai, D.T.Hawkins, M.Gleiser, K.K.Kelley: Selected Values of the Thermodynamic Properties of Binary Alloys, Metals Park (OH), ASM; 1973.Suche in Google Scholar
© 2008, Carl Hanser Verlag, Munich
Artikel in diesem Heft
- Contents
- Contents
- Editorial
- IJMR wishes all its readers and contributors a belated Happy New Year
- Basic
- Experimental study of the phase relations in the Fe–Zn–Cr system at 600°C
- Thermodynamic description of the ternary Pd–Sn–Zn system
- The morphology of nitrided iron–chromium alloys; influence of chromium content and nitrogen supersaturation
- The surface tension and density of Ag–Bi–Sn alloys
- Density and thermal expansion of liquid binary Al–Ag and Al–Cu alloys
- Hardening precipitation and mechanical properties in new Mg–Mn–Y–Gd alloys
- On recrystallization texture formation in polycrystalline fcc alloys with low stacking fault energies
- A numerical study of grain size effects on the strength and elongation of Al polycrystals using strain gradient plasticity theory
- Applied
- Thermodynamic simulation of the Bayer process
- The anisotropy of deformation for friction stir processed Mg alloy due to the existence of onion rings
- A study of the Si-phase growth mechanismin thixocast (A356) alloy during hot deformation
- Study of hydrogen absorption of aluminum melt
- Modelling of work-hardening behaviour for laser welded magnesium alloy
- Tribological behavior of short carbon fiber or hybrid with SiCp reinforced Al alloy composites
- Elevated temperature compressive behavior of Nb-22Ti-16Si-7Cr-3Al-3Ta-2Hf alloy with minor Ho addition
- Notifications
- News
Artikel in diesem Heft
- Contents
- Contents
- Editorial
- IJMR wishes all its readers and contributors a belated Happy New Year
- Basic
- Experimental study of the phase relations in the Fe–Zn–Cr system at 600°C
- Thermodynamic description of the ternary Pd–Sn–Zn system
- The morphology of nitrided iron–chromium alloys; influence of chromium content and nitrogen supersaturation
- The surface tension and density of Ag–Bi–Sn alloys
- Density and thermal expansion of liquid binary Al–Ag and Al–Cu alloys
- Hardening precipitation and mechanical properties in new Mg–Mn–Y–Gd alloys
- On recrystallization texture formation in polycrystalline fcc alloys with low stacking fault energies
- A numerical study of grain size effects on the strength and elongation of Al polycrystals using strain gradient plasticity theory
- Applied
- Thermodynamic simulation of the Bayer process
- The anisotropy of deformation for friction stir processed Mg alloy due to the existence of onion rings
- A study of the Si-phase growth mechanismin thixocast (A356) alloy during hot deformation
- Study of hydrogen absorption of aluminum melt
- Modelling of work-hardening behaviour for laser welded magnesium alloy
- Tribological behavior of short carbon fiber or hybrid with SiCp reinforced Al alloy composites
- Elevated temperature compressive behavior of Nb-22Ti-16Si-7Cr-3Al-3Ta-2Hf alloy with minor Ho addition
- Notifications
- News