How do you differentiate #f(x)=2^x#? Calculus Differentiating Exponential Functions Differentiating Exponential Functions with Other Bases 1 Answer Euan S. · Jim H Aug 8, 2016 #f'(x) =2^xln(2)# Explanation: #f(x) = y = 2^x# Take natural logs of both sides: #ln(y) = ln(2^x) = xln(2)# Implicitly differentiate both sides: #1/y * (dy)/(dx) = ln(2)# #(dy)/(dx) = yln(2)# #y = 2^x implies (dy)/(dx) = 2^xln(2)# Answer link Related questions How do I find #f'(x)# for #f(x)=5^x# ? How do I find #f'(x)# for #f(x)=3^-x# ? How do I find #f'(x)# for #f(x)=x^2*10^(2x)# ? How do I find #f'(x)# for #f(x)=4^sqrt(x)# ? What is the derivative of #f(x)=b^x# ? What is the derivative of 10^x? How do you find the derivative of #x^(2x)#? How do you find the derivative of #f(x)=pi^cosx#? How do you find the derivative of #y=(sinx)^(x^3)#? How do you find the derivative of #y=ln(1+e^(2x))#? See all questions in Differentiating Exponential Functions with Other Bases Impact of this question 1532 views around the world You can reuse this answer Creative Commons License