1) Green laser pointers are becoming popular for presentations. The green light is monochromatic and has a wavelength of 532 nm. a) What is the frequency of this light? b) What is the energy in Joules - QAmmunity.org

1) Green laser pointers are becoming popular for presentations. The green light is monochromatic and has a wavelength of 532 nm. a) What is the frequency of this light? b) What is the energy in Joules

asked Feb 23, 2021 143k views

1 Answer

a)
$5.64\cdot 10^(14) Hz$

b)
$3.74\cdot 10^(-19)J$

c)
$2.25\cdot 10^5 J$

d)
$-2.2\cdot 10^(-18) J$

e)
$-5.4\cdot 10^(-19) J$

f)
$1.66\cdot 10^(-18) J$

Step-by-step explanation:

a)

The frequency and the wavelength of a light wave are related by the so-called wave equation:

$c=f\lambda$

where

c is the speed of light

f is the frequency of light

$\lambda$ is the wavelength

In this problem, we have:

$c=3.0\cdot 10^8 m/s$ is the speed of light

$\lambda=532 nm = 532\cdot 10^(-9) m$ is the wavelength of the green light emitted by the laser

Solving for f, we find the frequency:

$f=(c)/(\lambda)=(3.0\cdot 10^8)/(532\cdot 10^(-9))=5.64\cdot 10^(14) Hz$

b)

The energy of a photon is given by the equation:

E=hf

where

E is the energy

h is the Planck constant

f is the frequency of the photon

For the photon in this problem we have:

$h=6.63\cdot 10^(-34)Js$ is the Planck's constant

$f=5.64\cdot 10^(14) Hz$ is the frequency of the photon

Substituting, we find the energy of the photon:

$E=(6.63\cdot 10^(-34))(5.64\cdot 10^(14))=3.74\cdot 10^(-19)J$

c)

1 mole of a substance is the amount of substance that contains a number of particles equal to Avogadro number:

$N_A=6.022\cdot 10^(23)$

This means that 1 mole of photons will contain a number of photons equal to the Avogadro number.

Here, we know that the energy of a single photon is

$E=3.74\cdot 10^(-19)J$

Therefore, the energy contained in one mole of photons of this light will be

E' = N_A E

And substituting the two numbers, we get:

$E'=(6.022\cdot 10^(23))(3.74\cdot 10^(-19))=2.25\cdot 10^5 J$

d)

According to the Bohr's model, the orbital energy of an electron in the nth-level of the atom is

E_n = -13.6(1)/(n^2) [eV]

where

n is the level of the orbital

The energy is measured in electronvolts

In this problem, we have an electron in the ground state, so

n = 1

Therefore, its energy is

E_1=-13.6(1)/(1^2)=-13.6 eV

And given the conversion factor between electronvolts and Joules,

$1 eV = 1.6\cdot 10^(-19) J$

The energy in Joules is

$E_1 = -13.6 \cdot (1.6\cdot 10^(-19))=-2.2\cdot 10^(-18) J$

e)

As before, the orbital energy of an electron in the hydrogen atom is

E_n = -13.6(1)/(n^2) [eV]

where:

n is the level of the orbital

The energy is measured in electronvolts

Here we have an electron in the

n = 2 state

So its energy is

$E_2=-13.6\cdot (1)/(2^2)=-3.4 eV$

And converting into Joules,

$E_2=-3.4 (1.6\cdot 10^(-19))=-5.4\cdot 10^(-19) J$

f)

The energy required for an electron to jump from a certain orbital to a higher orbital is equal to the difference in energy between the two levels, so in this case, the energy the electron needs to jump from the ground state (n=1) to the higher orbital (n=2) is:

$\Delta E = E_2-E_1$

where:

$E_2=-5.4\cdot 10^(-19) J$ is the energy of orbital n=2

$E_1=-2.2\cdot 10^(-18)J$ is the energy of orbital n=1

Substituting, we find:

$\Delta E=-5.4\cdot 10^(-19)-(-2.2\cdot 10^(-18))=1.66\cdot 10^(-18) J$

Denis Gladkiy answered Mar 1, 2021

by Denis Gladkiy

4.7k points

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