Engineering
Academic Programs
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Biomaterials Engineering MS -
Ceramic Engineering MS -
Electrical Engineering MS -
Glass Science MS -
Materials Science and Engineering MS -
Mechanical Engineering MS -
Ceramics PhD -
Glass Science PhD -
Materials Science and Engineering PhD
Courses
CEMS 500: Special Topics
Credits 2 4CEMS 501: Solid State Physics
Credits 3CEMS 502: Quantum Mechanics I
Credits 3CEMS 503: Thermodynamics of Materials
Credits 3CEMS 504: Kinetics and Non-equilibrium Processes in Material
Credits 3CEMS 505: Defects and Defect-related Processes
Credits 3CEMS 506: Advanced Engineering Mathematics
Credits 3CEMS 507: Quantum Mechanics II
Credits 3CEMS 508: Physics of Glass
Credits 4CEMS 510: Advanced Ceramic Processing
Credits 3CEMS 511: Science of Whitewares
Credits 3CEMS 514: Perovskites: Design, Processing and Structure - Property Relations
Credits 3Perovskites are a large family of materials of scientific and technological interest due to their enormous range of material properties. This course uses fundamental constructs and project based active learning toward design, synthesize, characterization and improved understanding of "simple", "simply mixed" and more complex, including high entropy and high temperature superconducting halide and chalcogenide perovskites. Temperature dependent atom properties, radii and polarizability, Mossotti-Lorenz-Lorentz-Clausius relation, and (diluted) electric-field dipole engineering at the nanoscale (E-DENS) are used within the new simple material model (NSMM) to investigate and strengthen understanding of structure - property relations, including mechanisms for and temperature of specific structural phase transitions, including linkages to thermodynamic phase diagrams.
CEMS 524: Mass Transport in Glasses and Melts
Credits 3CEMS 526: Surface Properties of Glass
Credits 3CEMS 527: Computational Physics
Credits 3CEMS 528: Structure & Properties of Optical Glasses
Credits 3CEMS 529: Fundamentals of Electrochemistry
Credits 1CEMS 533: Statistical Experimental Design
Credits 3CEMS 537: Characterization of Glass and Ceramic Surfaces
Credits 3CEMS 543: Analytical Electron Microscopy
Credits 3CEMS 544: Structure and Characterization of Glasses
Credits 3CEMS 545: Characterization in Materials Science and Engineering
Credits 3CEMS 553: Mechanical Properties of Glasses and Ceramics
Credits 3CEMS 560: Biology for Engineers
Credits 3CEMS 562: Immunology
Credits 4CEMS 564: Biochemistry: Proteins and Metabolism
Credits 4CEMS 565: Biochemistry: Nucleic Acids
Credits 4CEMS 568: Biomedical Materials
Credits 3CEMS 572: Machine Learning Applications in Battery Life Predictions
Credits 1CEMS 575: Biocompatibility
Credits 3CEMS 597: Glass Art Engine
Credits 2CEMS 605: Computational Materials
Credits 2CEMS 685: Graduate Internship
Credits 1 4ELEC 500: Topics in Electrical Engineering
Credits 1 4ELEC 510: Computer Architecture
Credits 3This course introduces the fundamentals of the modern processor design through qualitative and quantitative analysis. Both hardware and software design aspects are discussed. The main topics include economics of scaling, pipelining, memory segmentation and performance, instruction set design, and performance optimization. The course includes a design project, implemented in VHDL, that utilizes the topics discussed in class.
ELEC 514: Perovskites: Design, Processing and Structure - Property Relations
Credits 3Perovskites are a large family of materials of scientific and technological interest due to their enormous range of material properties. This course uses fundamental constructs and project based active learning toward design, synthesize, characterization and improved understanding of "simple", "simply mixed" and more complex, including high entropy and high temperature superconducting halide and chalcogenide perovskites. Temperature dependent atom properties, radii and polarizability, Mossotti-Lorenz-Lorentz-Clausius relation, and (diluted) electric-field dipole engineering at the nanoscale (E-DENS) are used within the new simple material model (NSMM) to investigate and strengthen understanding of structure - property relations, including mechanisms for and temperature of specific structural phase transitions, including linkages to thermodynamic phase diagrams.
ELEC 531: Wind Energy
Credits 3ELEC 571: Genetic Algorithims
Credits 3ELEC 574: Electric Machinery
Credits 3ELEC 584: VLSI Design
Credits 3Design of VLSI circuits concentrating on CMOS technologies. Logic design, fabrication principles, CAD layout and introduction to VLSI systems architecture. Structured design emphasis will be with the concept of hierarchy. Design methodology will focus on design of VLSI subsystems using advanced hierarchical design tools including Verilog HDL.
ELEC 586: Analog VLSI Design
Credits 3Continuation of the analog design component of VLSI Design. Transistor Circuits, current sources and mirrors, differential operational amplifiers, comparator. Switched capacitor techniques. Analog-to-digital/digital-to-analog conversion, analog signal processing.