Effect of ZnO nanoparticles addition on thermal, microstructure and tensile properties of Sn–3.5 Ag–0.5 Cu (SAC355) solder alloy

M.M.Mousa; A. Fawzy; S. A. Fayek; E. Nassr; G. Saad; Milad Sobhy Megalaa;

Abstract


Regarding to the development of Sn–Ag–Cu
(SAC) lead-free solders for advance electronic components,
the effect of 0.5 wt% nano-sized ZnO particles on
the thermal, microstructure and tensile properties of
Sn–3.5 wt% Ag–0.5 wt% Cu (SAC355) lead-free solder
alloy is investigated. The results showed that addition
of 0.5 wt% nano-sized ZnO particles into the conventional
lead-free SAC355 solder caused a slight increase of
its liquidus temperature by about 1.1 K. Metallographic
observations of SAC355–0.5 wt% ZnO (composite solder)
revealed an obvious refinement in the microstructure
compared with the SAC355 (non-composite) solder. Consequently,
addition of nano sized-ZnO particles could
improve the stress–strain characteristics proof stress (ry0.2)
and ultimate strength (rUTS). This was rendered to suppressing
effect of ZnO on the coarsening of the intemetallic
compounds (IMCs) Ag3Sn and Cu6Sn5 during the solidification
process in the composite solder and subsequently
dispersion strengthening is considered to be the dominating
mechanism. This will allow the use of SAC355 composite
lead-free solder alloy, to be consistent with the conditions
of usage for conventional SAC solder alloys and to overcome
the serious problem of the excessive growth of IMCs
and the formation of microvoids in the SAC lead-free
solder alloys


Other data

Title Effect of ZnO nanoparticles addition on thermal, microstructure and tensile properties of Sn–3.5 Ag–0.5 Cu (SAC355) solder alloy
Authors M.M.Mousa ; A. Fawzy; S. A. Fayek; E. Nassr; G. Saad; Milad Sobhy Megalaa 
Issue Date 18-Apr-2013
Publisher Journal of Materials Science: Materials in Electronics
Journal Journal of Materials Science: Materials in Electronics 
Volume 24
Issue 1
Start page 3210
End page 3218
DOI 10.1007/s10854-013-1230-2

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