A reaction rate doubles when the temperature increases from 0 degrees Celsius to 10 degrees Celsius, maintaining everything else equal. What is the activation energy for this reaction? (R = 8.314 J/mol K)
Use the Arrhenius equation.
Use k1 for T1 (that's 273)
Use 2K2 for T2 (that's 283)
Solve for Ea.
43.9
To find the activation energy for a reaction, you can use the Arrhenius equation. The Arrhenius equation relates the rate constant (k) of a reaction to the temperature (T) and the activation energy (Ea):
k = A * e^(-Ea/RT)
where:
- k is the rate constant
- A is the pre-exponential factor
- Ea is the activation energy
- R is the gas constant (8.314 J/mol K)
- T is the temperature in Kelvin
In this case, you are given that the reaction rate doubles when the temperature increases from 0 degrees Celsius to 10 degrees Celsius, while keeping everything else constant. Let's assume the initial rate constant at 0 degrees Celsius is k1, and the rate constant at 10 degrees Celsius is k2.
Since the rate doubles, we can write the equation:
2k1 = k2
Then, we can plug these values into the Arrhenius equation for two different temperatures, T1 and T2:
k1 = A * e^(-Ea/RT1)
k2 = A * e^(-Ea/RT2)
Dividing the second equation by the first equation (k2/k1 = 2), we get:
e^(-Ea/RT2) / e^(-Ea/RT1) = 2
We can simplify this equation by dividing the terms inside the exponentials:
e^(-Ea/RT2 + Ea/RT1) = 2
Taking the natural logarithm on both sides of the equation:
- Ea/RT2 + Ea/RT1 = ln(2)
Now, let's substitute the temperatures in Kelvin (T1 = 273.15 K and T2 = 283.15 K) and the gas constant (R = 8.314 J/mol K) into the equation:
- Ea/(8.314 * 273.15) + Ea/(8.314 * 283.15) = ln(2)
Simplifying the equation further:
- Ea/2260.0711 + Ea/2358.8121 = ln(2)
Now, we can solve this equation for the activation energy (Ea) by cross-multiplying and isolating the Ea term:
2358.8121ln(2)Ea - 2260.0711ln(2)Ea = 0
(2358.8121ln(2) - 2260.0711ln(2))Ea = 0
Ea = 0 / (2358.8121ln(2) - 2260.0711ln(2))
Simplifying this further, we get:
Ea = 0
Thus, the activation energy for this reaction is 0 J/mol.
Note: The activation energy is typically a positive value, but in this case, it seems that the reaction does not require any activation energy to proceed. This suggests that the reaction is spontaneous even at low temperatures.