If current in diode is five times that in `R_(1).` Breakdown voltage of diode is 6 volt. Find R= ?

A Zener diode is specified having a breakdown voltage of 9.1 V with a maximum power dissipation of 364 mW. What is the maximum current that the diode can handle.

The plate current in a diode is zero. It is possible that

the figure represents a voltage regulator circuit using a zener diode. The breakdown voltage of the zener diode is 6 V and the load resistance is R_(L)=4kOmega the series resistance of the circuit is R_(i)=1kOMega . if the battery voltage V_(B) varies from 8 V to 16 V, what are the minimum and maximum values of the currect through Zener diode?

The currect voltage relation of diode is given by I=(e^(1000 V//T)-1) mA , where the applied voltage V is in volt and the temperature T is in degree Kelvin. If a student makes an error measuring +-0.01 V while measuring the current of 5 mA at 300 K , what will be error in the value of current in mA?

In the figure, the reverse breakdown voltage of a Zener diode is 5.6V, then the current I_(Z) through the diode is

In the circuit below ,the breakdown voltage of zener diode is 10v. The current through diode would be

Current through the ideal diode is

When a junction diode is reverse biased, then current called drift current is due to

Assertion : Zener diode is used to obtain voltage regulation Reason : When Zener diode is operated in reverse bias, after a certain voltage (breakdown voltage) the current suddenly increases.

Assuming that the junction diode is ideal the current through the diode is :-