已知NH3(g)、NO(g)、H2O(l)的△fGmθ分别为-16.64KJ·mol-1、86.69KJ·mol-1、-237.2KJ·mol-1,则反应4NH3(g)+5O2(g)→4NO(g)+6H2O(l)的△rGmθ(KJ·mol-1)为()
A: -133.9
B: -1009.9
C: -1286.6
D: 159.5
A: -133.9
B: -1009.9
C: -1286.6
D: 159.5
举一反三
- 已知H2O (l) = H2 (g) +1/2 O2 (g) DrHmy = 285.8 kJ·mol–1 则反应2 H2 (g) + O2 (g) = 2H2O (l) 的 DrHmy 为 ( ) A: 285.8 kJ·mol–1 B: - 285.8 kJ·mol–1 C: 571.6 kJ·mol–1 D: - 571.6 kJ·mol–1
- 已知H2O(g) = H2(g) +0.5O2(g),ΔrHm(1) = 241.8 kJ·mol–1;H2(g) = 2H(g),ΔHm(2) = 436.0 kJ·mol–1;0.5O2(g) = O(g),ΔHm(3)=247.7 kJ·mol–1则H2O中H–O键的平均键焓(单位:kJ·mol–1)为() A: 462.8 B: 925.5 C: –462.8 D: 241.8
- 【单选题】由下列数据确定CH 4 (g)的为Δ f H m Θ 为 () C ( 石墨 ) +O 2 (g)=CO 2 (g) Δ r H m Θ =-393.5kJ·mol - 1 H 2 (g)+1/2O 2 (g)=H 2 O(l) Δ r H m Θ =-285.8kJ·mol - 1 CH 4 (g)+2O 2 (g)=CO 2 (g)+2H 2 O ( l ) Δ r H m Θ =-890.3kJ·mol - 1 A. 211 kJ·mol -1 B. -74.8kJ·mol - 1 C. 890.3 kJ·mol - 1 D. 缺条件,无法算
- 已知C 2H 6(g)+7/2O 2(g) = 2CO 2(g) +3H 2O(l),C 2H 6(g)、CO 2(g)、H 2O(l)的Δ fH m y(kJ·mol -1)分别为:-85、-394、-286,试求上述反应的Δ rH m y为______。 A: -85+394+286(kJ·mol -1) B: -394+85-286(kJ·mol -1) C: -85-2×(-394)-3×(-286)(kJ·mol -1) D: 2×(-394)+3×(-286)-(-85)(kJ·mol -1)
- 已知反应B4C(s)()+4O2(g)()=2B2O3(s)()+CO2(g)的ΔrHmΘ=-2859()kJ·mol-1;而且ΔfHmΘ(B2O3)()=()-1273()kJ·mol-1;ΔfHmΘ(CO2)()=()-393()kJ·mol-1。则ΔfHmΘ(B4C)为()。A.()-()2859()kJ·mol()-()1B.()-()1666()kJ·mol()-()1C.()1666()kJ·mol()-()1D.()-()80.0()kJ·mol()-()1