?S=7.6 J. K-1 ?F=?G=-2285.4 J W=-P外?V = 0 Q=?U-W = 0 3) 状态函数变化值同前1)、2)。
W=-P外?V=-100×103×(50-20)×10-3 =-3000J Q = -W = 3000J 2.解:
1mol·78℃ 100KPa 乙醇(l) q 1mol·78℃ 100KPa 乙醇(g)
3953?S=?H/T=351.15=11.26J.K-1
?H=Qp=3953J
?G=?H-T?S=0 ?U=?H-P?V=?H-nRT
=3953-1×8.314×351.15=1033.5J
?F=?U-T?S=1033.5-3953=-2919.5J 3.解:CO2(g)+C
??fHmkJ?mol?1
2CO(g)
-393.5 0 -110.5
?SmJ?K?1?mol?1
213.6 5.7 179.6
?rHm?=?vB?fHm?=-110.5×2+393.5=172.5KJ.mol-1 ?rSm?=?vBSm?=2×197.6-213.6-5.7=175.93J.mol-1 K-1 ?rGm?=?rHm?-T?rSm?=172.5×103-373.15×175.9 =106.9×103J.mol-1>0
∴ 在标准状态下,该反应向生成CO2和C的方向进行。 若要逆向进行,其转变温度T为:(?rGm?<0)
??rHm172500??980.6K??rS175.9mT >
??5Kb?c?c?NH34.解:OH==1.77?10?0.05=0.94×10-3mol·dm-3 2Q?c2??c?MnOH =1×10-3×1.77×10-5×0.05
=8.85×10-10>Ksp?=2.06×10-13 ∴ 能生成Mn(OH)2沉淀 2)解:Mn(OH)2?Mn2??2OH? Ksp?2.06?10?13
?cOH??Ksp/cMn2??2.06?10?13/1?10?3?1.44?10?5mol?dm?3
pOH?4.84 pH?14?4.84?9.16
pH?pKa?lgc酸c?9.25?lgcNH?4cNH3?9.16
lgcNH?4cNH34?0.09
cNH?/cNH??1.2343
cNH??1.23?cNH3?1.23?0.1?0.123mol?dm?3MNH4Cl?0.123?MNH4Cl?0.123?0.1?53.5?0.66
(pCO/p?)2K?pCO2/p??
pCO22pCO100?103???? Pa?15K?P1.08?10
2???15?11pCO?K?p?p?1.08?10?100?100?1.08?10CO22
pCO?10.8?10?12?3.29?10?3Pa