Given, wavelength of light $\lambda=6000 \mathop A\limits^o=6000 \times 10^{-10} \mathrm{~m}$

Energy of the light photon

$$E=\frac{h c}{\lambda}=\frac{6.6 \times 10^{-34} \times 3 \times 10^8}{6000 \times 10^{-10} \times 1.6 \times 10^{-19}} \mathrm{eV}=2.06 \mathrm{eV}$$

The incident radiation which is detected by the photodiode having energy should be greater than the band-gap. So, it is only valid for diode $D_2$. Then, diode $D_2$ will detect this radiation.

Consider the circuit in fig. (b) to find the change in reading As we know the formula for base current, $I_B=\frac{V_{\mathrm{BB}}-V_{\mathrm{BE}}}{R_i}$

As $R_i$ is increased, $I_B$ is decreased.

Now, the current in ammeter is collector current $I_C$. $I_C=\beta I_B$ as $I_B$ decreased $I_C$ also decreased and the reading of voltmeter and ammeter also decreased.

As car enters in the gate, any one or both are opened.

The device is shown.

So, OR gate gives the desired output.

The NOT gate is a device which has only one input and one output $i . e ., \bar{A}=Y$ means $Y$ equals NOT A.

This gate cannot be realised by using diodes. However it can be realised by making use of a transistor. This can be seen in the figure given below

Here, the base $B$ of the transistor is connected to the input $A$ through a resistance $R_b$ and the emitter $E$ is earthed. The collector is connected to 5 V battery. The output $Y$ is the voltage at $C$ w.r.t. earth.

The resistor $R_b$ and $R_c$ are so chosen that if emitter-base junction is unbiased, the transistor is in cut off mode and if emitter-base junction is forward biased by 5 V , the transistor is in saturation state.

In elemental semiconductor, the band gap is such that the emission are in infrared region and not in visible region.