Title: Introduction to Optical Electronics
1Introduction to Optical Electronics
2Traveling Waves in a Planar-Mirror Resonator
Mirror 1
Mirror 2
U3
U2
U1
r r1 r2
U0
r e-j?U
r e-j?
U0
U
3Traveling Waves in a Planar-Mirror Resonator
Mirror 1
Mirror 2
d
4Modes of a System
5Modes of a Lossy Resonator
For large F
6Impact of Reflectivity (r)Imax held constant
r 0.5
r 0.9
7Spectrum Analyzer
T Transmittance
8Optical CavitiesExercise 1.4-7 (PS 1)
or
9 Resonator Stability Diagram
10The Gaussian Beam
11Matching Gaussian Beam to Spherical Mirrors
d
R1 R(z1)
-R2 R(z2)
Phase fronts
z1
z2
0
12Exercise 9.2-1 Maximum Resonator Length for
Confined Rays
d
R1
R2
Phase fronts
z1
z2
0
A resonator is constructed using two concave
mirrors of radii 50 cm and 100 cm. Determine the
maximum resonator length for which rays satisfy
the confinement condition
13Exercise 9.2-2 Matching Gaussian Beams to a
Plano-Concave Resonator
d
R1
R2
z 0
z2
- Determine the following in terms of (d /R2)
- Confinement Condition (stability)
- Depth of Focus
- Beam Radius at the waist and at each of the
mirrors
14Spherical-Mirror ResonatorsHermite-Gaussian Modes
15Exercise 9.2-3 Resonance Frequencies of a
Confocal Resonator
- A symmetrical confocal resonator has a length d
30 cm, and the medium has refractive index n 1.
Determine the frequency spacing ?F and the
displacement frequency (?? /? )?F. Determine all
the resonance frequencies that lie within the
band 5 x 1014 ? 2 x 109 Hz.