A proton is release from rest at the origin in a uniform electric field in the positive x direction with magnitude 850N/C. What is the change in electric potential energy when the proton travels to x = 2.50m

Question

A proton  is release from rest at the origin in a uniform electric field in the positive x direction with magnitude 850N/C. What is the change in electric potential energy when the proton travels to x = 2.50m

Elena · Answer

ΔKE=W(electric field) =e•Δφ=e•E•x= =1.6•10⁻¹⁹•850•2.5 =3.4•10⁻¹⁶ J.