Light Emitting Diode is a forward biased p-n junction diode. Explain

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Here are some key points to elaborate on the statement that "Light Emitting Diode is a forward biased p-n junction diode":

  • A Light Emitting Diode (LED) is a type of semiconductor device that emits light when a current passes through it.
  • Like other diodes, an LED is made up of a p-n junction, where the p-type and n-type semiconductors are joined together.
  • When a forward voltage is applied to the p-n junction, electrons and holes are injected across the junction, and they recombine in the depletion region.
  • The energy released by this recombination can be emitted as photons of light, producing the characteristic glow of the LED.
  • The wavelength of the light emitted by an LED depends on the band gap energy of the semiconductor material used to make the diode.
  • LED materials can be engineered to emit light in a wide range of colors, from ultraviolet to infrared.
  • LEDs are commonly used as indicator lights in electronic devices, but they also have many other applications, including backlighting displays, lighting in automotive and traffic signals, and general illumination.
  • Compared to traditional incandescent light bulbs, LEDs are much more efficient and have a longer lifespan, making them a popular choice for energy-efficient lighting.

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CBSE CLASS XII Related Questions

  • 1.
    A charged particle $+q$ in an electric field $\vec{E}$ experiences a force in the direction of the electric field. As a result, its kinetic energy changes. Similarly, the charged particle also experiences a force when it moves in a magnetic field $\vec{B}$. But this magnetic force is perpendicular to both velocity $\vec{v}$ of the charged particle and the magnetic field $\vec{B}$, so it cannot change the kinetic energy of the charged particle. Consider two charged particles 1 and 2 of masses $m$ and $\frac{m}{2}$ having charges $-q$ and $+2q$ respectively. They are accelerated from rest through the same potential difference $V$ and acquire kinetic energy $K_1$ and $K_2$. Then they enter in a region of uniform magnetic field $\vec{B}$ perpendicular to their velocities.


      • 2.
        An electric field $\vec{E}$ is established across the ends of a cylindrical conductor of length L and area of cross-section A. Discuss how electrons attain an average velocity, independent of time. Hence, obtain a relation between current in the conductor and this ‘average velocity’ of electrons.


          • 3.
            This ‘average velocity’ is found be few mm/s for currents in range of a few amperes. How then is current established almost the instant a circuit is closed ?


              • 4.
                Read the following paragraph and answer the questions that follow.
                In an experiment with convex lens of focal length f, the screen is fixed at a distance D from the object. A student slowly moves the lens away from the object towards the screen and finds that she is able to form sharp image of the object for two positions of the lens. The distance between these two positions of the lens is d.


                  • 5.
                    Read the following paragraph and answer the questions that follow.
                    A p-type or n-type semiconductor can be converted into a p-n junction by doping it with suitable impurity. The motion of majority charge carriers causes diffusion current across the junction while the barrier electric field causes motion of minority carriers for drift current. In case of unbiased diode, the diffusion and drift currents are equal. This equilibrium is disturbed by the biasing batteries. Diodes, therefore, allow currents in one direction. This property of diode is used in making rectifiers.


                      • 6.
                        A student sets up the circuit as shown in the figure to find the value of unknown resistance X and records a set of readings of the voltmeter and the ammeter by using the rheostat.

                          CBSE CLASS XII Previous Year Papers

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