ABSTRACT

This book treats the interaction of radiation with matter, particular attention being paid to the laser. Knowledge is assumed of the usual half-year introduction of quantum mechanics found in undergraduate physics curricula. The material can be covered in two semesters, or, alternatively, the first part (Chaps 1-13) can be used as a one-semester course in which quantum mechanical aspects of the electromagnetic field are ignored. Each chapter is accompanied by problems that illustrate the text and give useful (occasionally new) results. Existing laser media are intrinsically quantum mechanical and are most easily studied with the quantum theory. Understanding the laser along these lines enlivens one's understanding of quantum mechanics itself. In fact, the material constitutes a viable, applied alternative for the usual second and third semesters of quantum mechanics.

chapter I|13 pages

WAVE MECHANICS

chapter II|16 pages

ATOM-FIELD INTERACTION

chapter III|15 pages

STIMULATED EMISSION AND DIPOLE OSCILLATORS

chapter IV|10 pages

CLASSICAL SUSTAINED OSCILLATOR

chapter V|11 pages

AMMONIA BEAM MASER

chapter VI|13 pages

THE STATE VECTOR

chapter VII|17 pages

THE DENSITY MATRIX

chapter VIII|19 pages

SEMICLASSICAL LASER THEORY

chapter IX|29 pages

MULTIMODE OPERATION

chapter X|28 pages

GAS LASER THEORY

chapter XI|9 pages

THE RING LASER

chapter XII|17 pages

THE ZEEMAN LASER

chapter XIII|24 pages

COHERENT PULSE PROPAGATION

chapter XIV|20 pages

QUANTUM THEORY OF RADIATION

chapter XV|15 pages

COHERENT STATES

chapter XVI|24 pages

RESERVOIR THEORY— DENSITY OPERATOR METHODS

chapter XVII|18 pages

QUANTUM THEORY OF THE LASER

chapter XVIII|11 pages

QUANTUM LASER THEORY AND MEASUREMENT

chapter XIX|17 pages

RESERVOIR THEORY—NOISE OPERATOR METHOD

chapter XX|14 pages

LANGEVIN THEORY OF LASER FLUCTUATIONS

chapter XXI|17 pages

OUTLOOK