No. of photons incident / area on screen (assuming aperture to act as a secondary point source)
\n\n\n\n\n\n
No. of photons incident on detector / sec
\n\n\n\n
Photo current
\n\n
Hence, photon flux density and photon current is .
\n\n\n
\n
When the lens of is used,
\n\n
When the lens of is used,
\n\n\n\n
Thus image will be at from the lens in the direction opposite to the screen.
\n\n
Distance between screen image
\n\n
No. of photons striking lens
\n\n
No. of photons striking the aperture
\n\n\n\n
Photons transmitted through the lens
\n\n\n\n
This new situation, A point source emitting
\n\n
photons/ of
\n\n
is kept at away from the screen.
\n\n
Thus photons striking / area of screen
\n\n\n\n
Electrons emitted
\n\n
Current
\n\n
Hence, new flux density and photocurrent is
\n\n\n\n\n\n
Hence, required stopping potential is
\n
\n"},"comment":{"@type":"Comment","text":"Related to the concept of wave particle duality and ray optics. "},"encodingFormat":"text/markdown","learningResourceType":"Practice problem","suggestedAnswer":[],"text":"
A monochromatic point source S radiating wavelength with power watt, an aperture of diameter a large screen are placed as shown in figure. A photoemissive detector D of surface area is placed at the centre of the screen. The efficiency of the detector for the photoelectron generation per incident photon is
\n\n
\n\n
(i) Calculate the photon flux density at the centre of the screen and the photo current in the detector.
\n\n
(ii) If a concave lens of focal length is inserted in the aperture as shown, find the new values of photon flux density & photocurrent. Assume a uniform average transmission of for the lens.
\n\n
(iii) If the work-function of the photoemissive surface is , calculate the values of the stopping potential in the two cases (without & with the lens in the aperture).
\n"},"name":"Quiz on Dual Nature of Matter and Radiation","typicalAgeRange":"10-17","url":"https://www.embibe.com/questions/A-monochromatic-point-source-S-radiating-wavelength-6000%C2%A0A%C2%B0-with-power-2-watt%2C-an-aperture-A-of-diameter-0.1%C2%A0m%C2%A0%26-a-large-screen-SC-are-placed-as-shown-in-figure.-A-photoemissive-detector-D-of-surface-area-0.5cm2-is-placed-at-the-centre-of-the-screen.-The-efficiency-of-the-detector-for-the-photoelectron-generation-per-incident-photon-is-0.9.%0A%0A%28i%29-Calculate-the-photon-flux-density-at-the-centre-of-the-screen-and-the-photo-current-in-the-detector.%0A%28ii%29-If-a-concave-lens-L-of-focal-length-0.6%C2%A0m-is-inserted-in-the-aperture-as-shown%2C-find-the-new-values-of-photon-flux-density-%26-photocurrent.-Assume-a-uniform-average-transmission-of-80%25-for-the-lens.%0A%28iii%29-If-the-work-function-of-the-photoemissive-surface-is-1eV%2C-calculate-the-values-of-the-stopping-potential-in-the-two-cases-%28without-%26-with-the-lens-in-the-aperture%29.%0A/EM8585593"}
Embibe Experts Solutions for Chapter: Dual Nature of Matter and Radiation, Exercise 4: Exercise-4
Author:Embibe Experts
Embibe Experts Physics Solutions for Exercise - Embibe Experts Solutions for Chapter: Dual Nature of Matter and Radiation, Exercise 4: Exercise-4
Attempt the free practice questions on Chapter 32: Dual Nature of Matter and Radiation, Exercise 4: Exercise-4 with hints and solutions to strengthen your understanding. Beta Question Bank for Engineering: Physics solutions are prepared by Experienced Embibe Experts.
Questions from Embibe Experts Solutions for Chapter: Dual Nature of Matter and Radiation, Exercise 4: Exercise-4 with Hints & Solutions
A monochromatic point source S radiating wavelength with power watt, an aperture of diameter a large screen are placed as shown in figure. A photoemissive detector D of surface area is placed at the centre of the screen. The efficiency of the detector for the photoelectron generation per incident photon is
(i) Calculate the photon flux density at the centre of the screen and the photo current in the detector.
(ii) If a concave lens of focal length is inserted in the aperture as shown, find the new values of photon flux density & photocurrent. Assume a uniform average transmission of for the lens.
(iii) If the work-function of the photoemissive surface is , calculate the values of the stopping potential in the two cases (without & with the lens in the aperture).
A beam of light has three wavelengths with a total intensity equally distributed amongst the three wavelength. The beam falls normally on an area of clean metallic surface of work function . Calculate photo current. (Assume each energetically suitable photon emits one electron)
Two identical non-relativistic particles move at right angles to each other, possessing de Broglie wavelengths and Find the de Broglie wavelengths of each particle in the frame of their centre of inertia.