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In Fig. 23-48a, an electron is shot directly away from a uniformly charged plastic sheet, at speed V5=2.0×105m/s . The sheet is non-conducting, flat, and very large. Figure 23-48bgives the electron’s vertical velocity component vversus time tuntil the return to the launch point. What is the sheet’s surface charge density?

Short Answer

Expert verified

The surface charge density of the sheet is 2.9×10-6C/m2.

Step by step solution

01

The given data

  1. An electron is shot directly away at speed,vs=2.0×105m/s
  2. The sheet is non-conducting, flat, and very large.
02

Understanding the concept of the electric field and Newton’s law

Using the concept of the electric field of a non-conducting sheet with the electrostatic force value of Newton's second law, we can get the expression for acceleration. Using this equation, we can get the surface charge density of the sheet. Again, we know that the slope of velocity and time graph gives the acceleration, using this value, charge, and mass of the electron, we get the required answer.

Formulae:

The electric field of a non-conducting sheet, E=σ2ε0 (1)

The force due to Newton’s second law, F=ma (2)

The electrostatic force due to passing electric field,F=qE(3)

03

Calculation of the surface charge density of the sheet

Substituting the value of the electric field from equation (1) in equation (3) and then substituting this force equation in equation (2), we get the acceleration value as given:

a=eσ2ε0m2.0×105m/s7.0×10-12s=(1.6×10-19C)2×(8.85×10-12F/M)×(9.1×10-31KGσ=2.9×10-6C/m2

Hence, the value of the surface charge density of the sheet is 2.9×10-6C/m2 .

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Most popular questions from this chapter

Figure 23-29 shows four Gaussian surfaces consisting of identical cylindrical midsections but different end caps. The surfaces are in a uniform electric fieldE→that is directed parallel to the central axis of each cylindrical midsection. The end caps have these shapes:S1, convex hemispheres;S3, concave hemispheres;S3, cones;S4, flat disks. Rank the surfaces according to (a) the net electric flux through them and (b) the electric flux through the top end caps, greatest first.

Figure 23-58 shows, in cross-section, two solid spheres with uniformly distributed charges throughout their volumes. Each has radius R. Point Plies on a line connecting the centers of the spheres, at radial distance from the center of sphere 1. If the net electric field at point Pis zero, what is the ratio of the total charges?

The box-like Gaussian surface shown in Fig. 23-38 encloses a net charge of+24.0ε0Cand lies in an electric field given by role="math" localid="1657339232606" E→=[(10.0+2.00)j^+bzk^]N/Cwith xand zin meters and ba constant. The bottom face is in the plane; the top face is in the horizontal plane passing through y2=1.00m. For x1=1.00m, x2=4.00m,z1=1.00m , andz2=3.00m, what is b?

Two long, charged, thin-walled, concentric cylindrical shells have radii of3.0 cm and 6.0 cm . The charge per unit length is 5.0×10-6C/mon the inner shell and -7.0×10-6C/mon the outer shell. What are the (a) magnitude Eand (b) direction (radially inward or outward) of the electric field at radial distance r=4.0 cm ? What are (c) Eand (d) the direction at r=8.0 cm?

Rank the situations of Question 9 according to the magnitude of the electric field

(a) halfway through the shell and

(b) at a point 2R from the center of the shell, greatest first.

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