Infrared lamps are used in restaurents to keep the food warm. The infrared radiation is strongly absorbed by water, raising its temperature and that of the food. If the wavelength of the infrared radiation is assumed to be 1500 nm, then the number of photons per second of infrared radiation produced by an infrared lamp that consumes energy at the rate of 100 W and is 12 % efficient only, is $x \times 10^{19}$ . (Take h = $6 \times 10^{- 34}$
x is .

9.09

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9.10

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Solution

Power of the lamp (rate at which the energy is consumedby the lamp), P = 100 W = 100 J/s
Efficiency = $\frac{l i g h t e n e r g y}{t o t a l e n e r g y} \times 100 = 12$ %
Amount of infrared light energy absorbed $= 12 \times 100 J \times \frac{1}{100} = 12 J$
$\Rightarrow n E = 12 J$
$n \times \frac{h c}{λ} = 12$
$n = \frac{12 \times 1500 \times 10^{- 9}}{6.6 \times 10^{- 34} \times 3 \times 10^{8}} = 9.09 \times 10^{19}$ .

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1500 n m

100 W

12 %

(x \times 10^{19})

x

h = 6.625 \times 10^{- 34} J - s

Give reason for the following :

(i) Infrared radiations are used for photography in fog.

(ii) Infrared radiations are used for signals during the war.

(iii) The photographic darkrooms are provided with the infrared lamps.

(iv) A rock salt prism is used instead of a glass prism to obtain the infrared spectrum.

(v) A quartz prism is required for obtaining the spectrum of the ultraviolet light.

(vi) Ultraviolet bulbs have a quartz envelope instead of glass.

Infrared radiation is detected by

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