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A pulsed laser emits light at a wavelength of 694.4 nm. The pulse duration is 12 ps, and the energy per pulse is 0.150 J. (a) What is the length of the pulse? (b) How many photons are emitted in each pulse?

Short Answer

Expert verified

a) The length of the pulse is 3.6 mm.

b) The number of photons emitted in each pulse is 5.24×1017.

Step by step solution

01

The given data:

The wavelength of the laser,λ=694.4nm

The duration of the pulse,t=12ps

The energy per pulse,E=0.150J

Consider the known data below.

The Plank’s constant is,

h=6.63×10-34J.s=6.242×1018×6.63×10-34eV.s=41.384×10-16eV.s

The speed of light is,

c=3×108m/s=3×108×109nm/s=3×1017nm/s

02

Understanding the concept of pulse and energy

Photon energy is the energy carried by a single photon. The amount of energy is directly proportional to the magnetic frequency of the photon and thus, equally, equates to the wavelength of the wave. When the frequency of photons is high, its potential is high.

Using the distance formula get the length of the pulse. Now, for the number of emitted photons, calculate the energy of each photon using the given wavelength. Now, the ratio of the energy of the pulse and the energy of the photon gives the required answer.

Formula:

The length or the distance traveled of a light wave,

L =ct ….. (1)

The energy of the photon due to Planck’s relation,

∆E=hcλ ….. (2)

03

(a) Calculation of the length of the pulse

Using the given data in equation (1), the length of the pulse can be calculated as follows:

L=3×108m/s12×10-12s=3.6×10-3m=3.6mm

Hence, the value of the length is 3.6 mm.

04

(b) Calculation of the number of emitted photons

At first, the energy of the pulse is converted into as follows:

Ep=EQ=0.150J1.6×10-19C=0.150J1.6×10-19J/eV=9.36×1017eV

Now, using the given data in equation (1), the energy of a single emitted photon can be calculated as follows:

E=41.384×10-16eV.s3×1017nm/s694.4nm=1240eV.nm694eV=1.786eV

Thus, the number of photons emitted by the laser light can be given as:

N=EpE=9.36×1017eV1.786eV=5.24×1017eV

Hence, the number of emitted photons is 5.24×1017eV.

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