Given that the heat of reaction for $A + \frac{1}{2} O_2 \to AO$ is $-50 \ kcal$ and for $AO + \frac{1}{2} O_2 \to AO_2$ is $100 \ kcal$. Find the heat of reaction for $A + O_2 \to AO_2$ in $kcal$.

  • A
    $-50$
  • B
    $+50$
  • C
    $100$
  • D
    $150$

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Similar Questions

Given $C + O_2 \rightarrow CO_2 + 94.2 \ kcal$,$\Delta H = -94.2 \ kcal$; $H_2 + 1/2 O_2 \rightarrow H_2O + 68.3 \ kcal$,$\Delta H = -68.3 \ kcal$ and $CH_4 + 2O_2 \rightarrow CO_2 + 2H_2O + 210.8 \ kcal$,$\Delta H = -210.8 \ kcal$. Calculate the heat of formation of methane $(CH_4)$ in $kcal$.

The bond energy of $Cl-Cl$ in $Cl_2$ is $242 \, kJ \, mol^{-1}$. What is the wavelength (in $nm$) of light required to break a single $Cl-Cl$ bond?

Bond enthalpies of $A_{2}$,$B_{2}$ and $AB$ are in the ratio $2:1:2$. If the enthalpy of formation of $AB$ is $-100 \ kJ \ mol^{-1}$,the bond enthalpy of $B_{2}$ is:

Given the following data:
Reaction Energy Change (in $kJ$)
$Li_{(s)} \to Li_{(g)}$ $161$
$Li_{(g)} \to Li^{+}_{(g)}$ $520$
$\frac{1}{2} F_{2(g)} \to F_{(g)}$ $77$
$F_{(g)} + e^- \to F^{-}_{(g)}$ (Electron gain enthalpy)
$Li^{+}_{(g)} + F^{-}_{(g)} \to LiF_{(s)}$ $-1047$
$Li_{(s)} + \frac{1}{2} F_{2(g)} \to LiF_{(s)}$ $-617$

Based on the data provided,the value of electron gain enthalpy of fluorine would be $kJ\ mol^{-1}$.

Which of the following heat of reaction expresses the bond energy of $HCl$?

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