Describe three general types of noise that have a different dependence on frequency. Give an example of the source of each kind of noise.

Short Answer

Expert verified

The different sorts of noise that depend on frequency and an example were Chemical noise, instrumental noise, shot noise and flicker noise.

Step by step solution

01

Definition of Noise

  • Unwanted sound that is regarded to be unpleasant, loud, or disruptive to hearing is referred to as noise.
  • Noise is indistinguishable from sound in terms of physics, as both are vibrations across a medium such as air or water.
02

Determine the dependence on frequency:

It is necessary to explain the many types of noise that have varied frequency dependences.

There are two types of noise that impair analysis:

1. Chemical noise

2. Instrumental noise

  • Chemical noise is caused by uncontrollable variables that have an impact on the chemistry of the system under investigation. Temperature, pressure, chemical equilibria, humidity, light intensity, and other unnoticed fluctuations are examples.
  • Instrumental Noise: Each component of an instrument is related with noise, including the source, input transducer, signal processing elements, and output transducer.
03

Determine the Shot noise and Flicker noise:

Noise is a complicated mixture that is difficult to adequately quantify. Certain types of instrumental noise are prohibited.

3. Shot noise

4. Flicker Noise:

  • Flicker noise is defined as noise whose size is inversely proportional to the frequency of the measured signal. It's also referred as as1f noise. The cause of flicker noise is unknown; however it can be identified by its frequency dependency. When the frequency is less than approximately, flicker noise becomes noticeable 100 Hz . When compared to the more usual carbon composition type, flicker noise can be greatly reduced by utilising wire-wound or metallic film resistors.
  • Shot Noise: When electrons or other charged particles cross a junction, shot noise occurs.

Where,irms root-mean-square current fluctuation,

I = average direct current,

Charge on the electron,(1.60×10-19C)

Df = band width of frequencies.

  • Only by lowering bandwidth can shot noise in a current measurement be reduced.
  • The different sorts of noise that depend on frequency and an example were discussed.

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Most popular questions from this chapter

Find the minimum angleθifor total reflection in the optical fiber in Figure 20-21 if the index of refraction of the cladding is 1.400 and the index of refraction of the core is

(a) 1.600 or

(b) 1.800.

Refer to the Fourier transform infrared spectrum in Figure 20-33.

(a) The interferogram was sampled at retardation intervals of1.2260×10-4cm. What is the theoretical wavenumber range (0 to ?) of the

spectrum?

(b) A total of 4 096 data points were collected from δ=-toδ=+. Compute the value of, the maximum retardation.

(c) Calculate the approximate resolution of the spectrum.

(d) The interferometer mirror velocity is given in the figure caption. How many microseconds elapse between each datum?

(e) How many seconds were required to record each interfero gram once?

(f) What kind of beam splitter is typically used for the region 400 to 4 000cm-1? Why is the region below 400cm-1not observed?

The path length of a cell for infrared spectroscopy can be measured by counting interference fringes (ripples in the transmission spectrum). The following spectrum shows 30interference maxima between 1906and698cm-1obtained by placing an empty KBrcell in a spectrophotometer.

The fringes arise because light reflected from the cell compartment interferes constructively or destructively with the unreflected beam.

If the reflected beam travels an extra distance, it will interfere constructively with the unreflected beam. If the reflection path length is λ/2, destructive interference occurs. Peaks therefore arise when mλ/2=2band troughs occur when, where mλ/2=2bis an integer. If the medium between KBr theplates has refractive index n, the wavelength in the medium is l/n, so the equations become mλ/n=2bandmλ/2n=2b. The cell path length can be shown to be given by

b=N2n×λ1λ2λ2-λ1=N2n×1v~1-v~2

where Nmaxima occur between wavelengthsλ1andλ2. Calculate the path length of the cell that gave the interference fringes shown earlier.

Describe the role of each component of the spectrophotometer.

(a) In the cavity ring-down measurement at the opening of this chapter, absorbance is given by A=Lcln10(1τ-1τ0)whereis the length of the triangular path in the cavity, Cis the speed of light, Tis the ring-down lifetime with sample in the cavity, and T0is the ring-down lifetime with no sample in the cavity. Ring-down lifetime is obtained by fitting the observed ring-down signal intensityto an exponential decay of the form l=l0e-, whereis the initial intensity and t is time. A measurement ofis made at a wavelength absorbed by the molecule. The ring-down lifetime for 21.0-cm-1 along empty cavity is 18.52μsand18.52μsfor a cavity containing.role="math" localid="1664865078479" CO2 Find the absorbance ofCO2at this wavelength.

(b) The ring-down spectrum below arises from CH413and CH412from 1.9ppm(vol/yol)of methane in outdoor air at 0.13. The spectrum arises from individual rotational transitions of the ground vibrational state to a second excited C-H)vibrational state of the molecule. (i) Explain what quantity is plotted on the ordinate ( Y-axis). (ii) The peak forCH412is at6046.9546cm-1. What is the wavelength of this peak in? What is the name of the spectral region where this peak is found?

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