A temperature-tunable etalon for optical telecommunication wavelength: Difference between revisions

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====Members====
====Members====
Shi Yicheng (A0054800R), Du Jinyi (A0227185B)
Shi Yicheng (A0054800R), Du Jinyi (A0227185B), Zhang Qian(?)


=Rationale=
=Rationale=

Revision as of 14:02, 8 February 2021

Members

Shi Yicheng (A0054800R), Du Jinyi (A0227185B), Zhang Qian(?)

Rationale

A Fabry-Perot interferometer (or an Etalon), being probably the simplest form of all interferometers, is found useful in a variety of optical applications such as spectral filtering or frequency referencing.

An etalon is typically constructed out of the two parallel reflecting surfaces of a transparent plate. The plate needs to have low absorption loss for the desired working wavelengths to ensure a relatively high finesse of the etalon. The material choice for visible wavelengths is usually fused silica with an absorption coefficient of [bla] and a thermal expansion coefficient of [bla].

For optical telecommunication wavelengths, which range from about 1260nm to 1625nm, pure silicon becomes a more practical choice with an absorption coefficient of [bla] and thermal expansion coefficient of [bla].

Characteristic Parameters of an Etalon

Building an Etalon Out of Silicon Wafer

Design

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Performance

caption

Bare Silicon Wafer

Transmission spectrum of a bare silicon wafer of 100μm Zoom in of the spectrum, showing a free spectral range of ~2.3nm (~400GHz)

HR Coated Silicon Wafer

Temperature Tuning of silicon etalon