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THE UNIVERSITY of EDINBURGHDEGREE REGULATIONS & PROGRAMMES OF STUDY 2007/2008
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Laser Physics (U01410)? Credit Points : 10 ? SCQF Level : 10 ? Acronym : PHY-4-Lasers Lasers are now commonplace throughout many aspects of everyday life, e.g. in CD players, telecoms, industrial processing and machines as well as in advanced systems for medical diagnosis and procedures. The course starts with a review of the basic physics of optical cavities Entry Requirements? Pre-requisites : At least 40 credit points accrued in courses of SCQF Level 9 or 10 drawn from Schedule Q, including Optics (PHY-3-Optics or PHY-3-Phy3). Prior/concurrent attendance at Atomic & Molecular Physics (PHY-4-AtMol) is desirable. Subject AreasHome subject areaUndergraduate (School of Physics), (School of Physics, Schedule Q) Delivery Information? Normal year taken : 4th year ? Delivery Period : Semester 2 (Blocks 3-4) ? Contact Teaching Time : 2 hour(s) per week for 11 weeks First Class Information
All of the following classes
Summary of Intended Learning Outcomes
On completion of this course a student should be able to demonstrate understanding of and be able to solve problems on:
(1) absorption and spontaneous and stimulated emission is two level system, the effects of homogeneous and inhomogeneous line broadening, and the conditions for laser amplification, (2) operations of the Fabry-Perot cavity including mode separation and line-widths, laser gain conditions, gain clamping in both homogeneous and inhomogeneous line broadened media, (3) the four-level laser system, the simple homogeneous laser and its output behaviour and optimal operating conditions, outline of inhomogeneous system, (4) spectral properties of a single longitudinal mode, mode locked laser operation, schemes for active and passive mode locking in real laser system, (5) operations and basic properties of the most common laser types, He-Ne, Argon-ion, and carbon-dioxide, ruby, titanium sapphire, neodymium YAG and glass, knowledge of other main laser types, (6)matrix optics of the laser cavity and stability conditions, (7) basics of Gaussian beam in laser cavity and optical properties of laser output, design of stable laser cavities using Gaussian beam optics, the ABCD law for Gaussian beams and the basics of their optical properties through simple optical components, (8)operations and types of semi-conductor laser diodes, simplified planar waveguide model, optical output of laser diodes and basic optics for beam control, optical properties of the light output and basic applications. Assessment Information
Degree Examination, 100%
Exam times
Contact and Further InformationThe Course Secretary should be the first point of contact for all enquiries. Course Secretary Mrs Linda Grieve Course Organiser Dr Will Hossack Course Website : http://www.ph.ed.ac.uk/~wjh/teaching/lasers/ School Website : http://www.ph.ed.ac.uk/ College Website : http://www.scieng.ed.ac.uk/ |
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