Estimate the optical loss due to Fresnel reflection at a fiber core from GaAs each of refractive indices 1.48 and 3.5 respectively. b) Calculate the optical power emitted into air for the device, when the step index fiber has a numerical aperture of 0.16, coupled power of 0.31 mW. c) Determine the overall power conversion efficiency for the LED if it is operating with a drive current of 210 mA and a forward voltage of 1.5V. d) Find the optical output power at 170MHz, and calculate the optical and electrical modulation bandwidth for a minority carrier recombination life time of 9ns.
Estimate the optical loss due to Fresnel reflection at a fiber core from GaAs each of refractive indices 1.48 and 3.5 respectively. b) Calculate the optical power emitted into air for the device, when the step index fiber has a numerical aperture of 0.16, coupled power of 0.31 mW. c) Determine the overall power conversion efficiency for the LED if it is operating with a drive current of 210 mA and a forward voltage of 1.5V. d) Find the optical output power at 170MHz, and calculate the optical and electrical modulation bandwidth for a minority carrier recombination life time of 9ns.
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Estimate the optical loss due to Fresnel reflection at a fiber core from GaAs
each of refractive indices 1.48 and 3.5 respectively.
b) Calculate the optical power emitted into air for the device, when the step
index fiber has a numerical aperture of 0.16, coupled power of 0.31 mW.
c) Determine the overall power conversion efficiency for the LED if it is
operating with a drive current of 210 mA and a forward voltage of 1.5V.
d) Find the optical output power at 170MHz, and calculate the optical and
electrical modulation bandwidth for a minority carrier recombination life time
of 9ns.
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