y=exp(k*x^2)

let u=k*x^2 => y=exp(u)=e^u

y'=dy/dx=(dy/du)*(du/dx)=(d(e^u)/du)*(du/dx)
=(e^u)*(2*k*x)
=2*k*x*exp(k*x^2)

(similar to 猫科动物's answer)