Asked by Sammantha
Sn (s) + 2Cl2(g) --> SnCl4(l).Sn(s) + Cl2(g) --> Sn Cl2(l) DH = -186.2 kJSnCl2(s) + Cl2(g) --> SnCl4(l) DH = -325.1 kJWhat is the change in enthalpy?
Answers
Answered by
blingblongyaomingde
Sn (s) + 2Cl2(g) --> SnCl4(l)
Change in enthalpy = DH1 + DH2 + DH3
Sn(s) + Cl2(g) --> Sn Cl2(l)
DH1 = -186.2 kJ
Sn Cl2(l) --> SnCl2(s)
DH2 = ? <-- find this either in a table in your book or online
SnCl2(s) + Cl2(g) --> SnCl4(l)
DH3 = -325.1 kJ
Change in enthalpy = DH1 + DH2 + DH3
Sn(s) + Cl2(g) --> Sn Cl2(l)
DH1 = -186.2 kJ
Sn Cl2(l) --> SnCl2(s)
DH2 = ? <-- find this either in a table in your book or online
SnCl2(s) + Cl2(g) --> SnCl4(l)
DH3 = -325.1 kJ
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