Consider a spherical charge configuration consisting of a charged semiconducting sphere placed inside of a charged spherical shell. The semiconducting sphere has a volume charge density of py = 108(r/a) Cm where r is the radial variable and a is the radius of the sphere. The shell has a radius b (b>a) and the electric flux density outside of the shell is D=0 Cm2. If a=9 m and b=8.2 m what is the surface charge of the conducting shell. O a. -146.36 Cm-2 O b. -292.73 Cm-2 O C. -126.85 Cm-2 O d. -253.70 Cm-2 O e. -195.15 Cm-2

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Consider a spherical charge configuration consisting of a charged semiconducting sphere placed inside of a
charged spherical shell. The semiconducting sphere has a volume charge density of py = 108(r/a) Cm where r
is the radial variable and a is the radius of the sphere. The shell has a radius b (b>a) and the electric flux density
outside of the shell is D=0 Cm2. If a=9 m and b=8.2 m what is the surface charge of the conducting shell.
O a. -146.36 Cm-2
O b. -292.73 Cm-2
O C. -126.85 Cm-2
O d. -253.70 Cm-2
O e. -195.15 Cm-2
Transcribed Image Text:Consider a spherical charge configuration consisting of a charged semiconducting sphere placed inside of a charged spherical shell. The semiconducting sphere has a volume charge density of py = 108(r/a) Cm where r is the radial variable and a is the radius of the sphere. The shell has a radius b (b>a) and the electric flux density outside of the shell is D=0 Cm2. If a=9 m and b=8.2 m what is the surface charge of the conducting shell. O a. -146.36 Cm-2 O b. -292.73 Cm-2 O C. -126.85 Cm-2 O d. -253.70 Cm-2 O e. -195.15 Cm-2
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