250,698 views
33 votes
33 votes
A certain atom has an energy state 3.50 eV above the ground state. When excited to this state, the atom remains for 2.0 ms, on average, before it emits a photon and returns to the ground state. (a) What are the energy and wavelength of the photon

User Slowik
by
3.0k points

1 Answer

9 votes
9 votes

Answer:


\lambda=3451*10^(10)m

Step-by-step explanation:

From the question we are told that:

Energy state
e=3.50 eV

Time
t=2ms

Generally the equation for energy of Photon is mathematically given by


E=e-e_0


E=3.6*10^(-19)J


E=5.7*10^(-19)J

Generally the equation for Wave-length of Photon is mathematically given by


\lambda=(hc)/(E)


\lambda=(6.626*10^(-34)*3*10^8)/(5.76*10^(-19))


\lambda=3451*10^(10)m

User Looneytunes
by
2.7k points