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irina [24]
2 years ago
5

Consider an electron in an infinite well of width 0.7 nm . What is the wavelength of a photon emitted when the electron in the i

nfinite well makes a transition from the first excited state to the ground state? The value of ¯h is 1.05457 × 10−34 J · s, the Bohr radius is 5.29177 × 10−11 m , the Rydberg constant for hydrogen is 1.09735 × 107 m−1 , the ground state energy for hydrogen is 13.6057 eV , and the speed of light is 2.99792 × 108 m/s. 1 eV = 1.60218 × 10−19 eV . Answer in units of nm.
Physics
1 answer:
ollegr [7]2 years ago
4 0

Answer:

 λ  = 538.0 nm

Explanation:

The solution of the Schrödinger equation for the inner part of the well gives energy

      E_{n} = (h² / 8mL²) n²

Where n is an integer and L is the length of the well

They ask for the transition from the first excited state n = 2 to the base state n = 1

       E₂ - E₁ = = (h² / 8mL²) (n₂² - n₁²)

Let's calculate

       E₂-E₁ = (6.63 10⁻³⁴)² / (8 9.1 10⁻³¹ (0.7 10⁻⁹)²) (2² -1²)

       E₂ –E₁ = 3.6968 10⁻¹⁹ J

Let's use the Planck equation

      E = h f

      c = λ f

      E = h c / λ

      E = E₂ ₂- E₁

      h c / λ  = 3.6968 10⁻¹⁹

      λ  = h c / (E₂-E₁)

      λ  = 6.63 10⁻³⁴ 3 10⁸ / 3.6968 10⁻¹⁹

      λ  = 5.380 10⁻⁷ m

Let's reduce

      λ  = 5.380 10⁻⁷ m (10 9 nm / 1 m)

      λ  = 538.0 nm

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As d=0.350 mm

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a = qE/m ............... 2

Substituting 2  into 1:

d = (qE/m)(D0 / v)^2 / 2

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q = 2(1.00e-11 kg)(3.50e-4 m)(15.0 m/s)^2 / [(7.70e4 N/C)(2.05e-2 m)^2]

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An object of mass 24kg is accelerated up a frictionless place incline at an angle of 37° with horizontal by a constant force, st
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a) Average power: 1425 W

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Explanation:

a)

The motion of the object along the ramp is a uniformly accelerated motion (because the force applied is constant), so we can use the suvat equation

s=ut+\frac{1}{2}at^2

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t = 3.0 s is the time taken

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Solving for a,

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This net force is the resultant of the applied force forward (F_a) and the component of the weight acting backward (mg sin \theta), so we can find what is the applied force:

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where

m = 24 kg is the mass of the object

g=9.8 m/s^2 is the acceleration of gravity

Now we can finally find what is the work done by the applied force, which is parallel to the ramp, therefore:

W=F_a s = (237.6)(18)=4276 J

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Therefore the average power needed is:

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b)

The instantaneous power at any point of the motion is given by

P=F_av

where

F_a is the force applied

v is the velocity of the object

We already calculated the applied force:

F_a=237.5 N

While since this is a uniformly accelerated motion, we can find the velocity at the end of the 3.0 seconds using the suvat equation:

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And therefore, the instantaeous power at 3.0 sec is:

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Learn more about power:

brainly.com/question/7956557

#LearnwithBrainly

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index  \: of  \: refraction \:  =  \:  \ \frac{ \sin(angle \: of \: incidence) }{ \sin(angle \: of \: refraction) }

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Pitch depends on the frequency. if the frequency increases then pitch increases.

When the source and the listener are moving towards each other then there is increase in the frequency. When the source and the listener are moving away each other then there is decrease in the frequency.

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2 years ago
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