Electrical & Computer Engineering

Graduate-level special topics. Content depends on instructor and subject for that term, often cutting-edge research in EECS/ECE/CSE.

Quantum Science and Technology innovations are explored and formulated for next-generation quantum photonics and electronics

Graduate-level special topics. Content depends on instructor and subject for that term, often cutting-edge research in EECS/ECE/CSE.

Graduate-level special topics. Content depends on instructor and subject for that term, often cutting-edge research in EECS/ECE/CSE.

Advanced study of processor design, memory hierarchy, parallel processing, and architectural innovations. Focuses on quantitative analysis and performance.

Complete study of laser operation: the atom-field interaction; homogeneous and inhomogeneous broadening mechanisms; atomic rate equations; gain and saturation; laser oscillation; laser resonators, modes, and cavity equations; cavity modes; laser dynamics, Q-switching and modelocking. Special topics such as femto-seconds lasers and ultrahigh power lasers.

Introduction to non-relativistic quantum mechanics. Summary of classical mechanics, postulates of quantum mechanics and operator formalism, stationary state problems (including quantum wells, harmonic oscillator, angular momentum theory and spin, atoms and molecules, band theory in solids), time evolution approximation methods for time independent and time dependent interactions including electromagnetic interactions, scattering.

Principles and applications of optical fiber communication systems. Covers light propagation, modulation, detection, and system design, with emphasis on fiber-optic technologies.

Continuation of non-relativistic quantum mechanics. Advanced angular momentum theory, second quantization, non-relativistic quantum electrodynamic,s advanced scattering theory, density matrix formalism, reservoir theory.