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Na2Sn(OH)6


Romix

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  • 2 weeks later...
  • 4 weeks later...

Ok, if I boil boards in NaOH.

All the solder should dissolve in it.

Forming Na2[sn(OH)6] and Na2[Pb(OH)4]

 

Na2[sn(OH)6] will decompose to Na2SnO3 + 3H2O

And I'm shore it will! Last time I heated aluminum chloride on my hotplate, it decomposed it, and temperatures for AlCl3 are much higher.

Na2[Pb(OH)4] decomposes to Na2PbO3 at the temperature of 300°C, about the same as for AlCl3.

 

I left with solution of Na2SnO3, Na2PbO3 and NaOH?

Edited by Romix
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  • 5 months later...

Although it is in the 4th main group and thus you would expect it to lose four elektrons to gain octet configuration, it has empty orbitals to which filled orbitals of other atoms can bond with. So normally you would expect Sn(OH)4 as a neutral compound, in basic environments it can take up to 2 additional bonds, effectively gaining an elektron from each of them to obtain Sn(OH)62-. Note that the valency of Sn is still (IV).

Edited by Fuzzwood
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