Engineering, M.S. (Concentration in Advanced Manufacturing)
David Kisailus, Director and Graduate Advisor
5076 Samueli Interdisciplinary Science and Engineering Building; 949-824-2116
http://engineering.uci.edu/interdisciplinary-graduate-programs/materials-and-manufacturing-technology
Advanced Manufacturing is concerned with the generation and application of knowledge relating the composition, structure, and processing of materials to their properties and applications, as well as the manufacturing technologies needed for production. During the past two decades, Advanced Manufacturing has become an important component of modern engineering education, partly because of the increased level of sophistication required of engineering materials in a rapidly changing technological society, and partly because the selection of materials has increasingly become an integral part of almost every modern engineering design. In fact, further improvements in design are now viewed more and more as primarily materials and manufacturing issues. Both the development of new materials and the understanding of present-day materials demand a thorough knowledge of basic engineering and scientific principles including, for example, crystal structure, mechanics, mechanical behavior, electronic, optical and magnetic properties, thermodynamics, phase equilibria, heat transfer, diffusion, and the physics and chemistry of solids and chemical reactions.
The field of Advanced Manufacturing ranks high on the list of top careers for scientists and engineers. The services of these engineers and scientists are required in a variety of engineering operations dealing, for example, with design of semiconductors and optoelectronic devices, development of new technologies based on composites and high-temperature materials, biomedical products, performance (quality, reliability, safety, energy efficiency) in automobile and aircraft components, improvement in nondestructive testing techniques, corrosion behavior in refineries, radiation damage in nuclear power plants, fabrication of steels, and construction of highways and bridges.
Subjects of interest in Advanced Manufacturing cover a wide spectrum, ranging from metals, optical and electronic materials to superconductive materials, ceramics, advanced composites, and biomaterials. In addition, the emerging new research and technological areas in materials are in many cases interdisciplinary. Accordingly, the principal objective of the graduate curriculum is to integrate a student’s area of emphasis—whether it be chemical processing and production, electronic and photonic materials and devices, electronic manufacturing and packaging, or materials engineering—into the whole of materials and manufacturing technology. Such integration will increase familiarity with other disciplines and provide students with the breadth they need to face the challenges of current and future technology.
Students with a bachelor’s degree may pursue either the M.S. or Ph.D. in Engineering with a concentration in Advanced Manufacturing. If students choose to enter the Ph.D. program directly, it is a requirement that they earn an M.S. along the way toward the completion of their Ph.D.
Given the nature of Advanced Manufacturing as an interdisciplinary program, students having a background and suitable training in either Materials, Engineering (Biomedical, Civil, Chemical, Electrical, and Mechanical), or the Physical Sciences (Physics, Chemistry, Geology) are encouraged to participate. Recommended background courses include an introduction to materials, thermodynamics, mechanical properties, and electrical/optical/magnetic properties. A student with an insufficient background may be required to take remedial undergraduate courses following matriculation as a graduate student.
Core Requirements
Core courses must be completed with a grade of B (3.0) or better.
| Complete: | |
| EECS 278/ENGRMAE 247 | Micro-System Design |
| ENGRMAE 259 | Mechanical Behavior of Solids - Atomistic Theories |
| MSE 200 | Structure of Materials |
| MSE 278 | Fundamentals of Materials Processing: How are Materials Processed to Make Things? |
Electives
Electives are grouped into four areas of emphasis.
| Chemical Processing and Production: | |
| Chemical Kinetics | |
| Applied Engineering Mathematics I | |
| Reaction Engineering | |
| Transport Phenomena I | |
| Advanced Engineering Thermodynamics | |
| Unit Operations II in Environmental Engineering | |
| Hydrology | |
| Electronic and Photonic Materials and Devices: | |
| Molecular and Cellular Engineering | |
| Engineering Medical Optics | |
| Semiconductor Devices | |
| Fundamentals of Solid-State Electronics and Materials | |
| Optical Electronics | |
| Advanced Semiconductor Devices I | |
| Advanced Semiconductor Devices II | |
| Nanotechnology | |
| Optical Communications | |
| Advanced Engineering Electromagnetics I | |
| Advanced Engineering Electromagnetics II | |
| Conduction Heat Transfer | |
| Convective Heat and Mass Transfer | |
| Biomedical and Electronic Manufacturing: | |
| Engineering Medical Optics | |
| Micro-Sensors and Actuators | |
| Robotics | |
| Micro-System Design | |
| Biorobotics | |
| Materials Engineering: | |
| Polymer Chemistry: Synthesis and Characterization of Polymers | |
| Nano-Scale Materials and Applications | |
| Advanced Strength of Materials | |
| Advanced Reinforced Concrete Behavior and Design | |
| Advanced Behavior and Design of Steel Structures | |
| Advanced Transport Phenomena | |
| Inviscid Incompressible Fluid Mechanics I | |
| Viscous Incompressible Fluid Mechanics II | |
| Compressible Fluid Dynamics | |
| Mechanics of Solids and Structures | |
| Composite Materials and Structures | |
| Mechanical Behavior of Solids - Continuum Theories | |
| Materials Physics | |
| Design with Ceramic Materials | |
| Mechanical Behavior of Engineering Materials | |
| Transmission Electron Microscopy | |
| Scanning Electron Microscopy | |
| Condensed Matter Physics and Condensed Matter Physics and Condensed Matter Physics | |
It should be noted that specific course requirements within the area of emphasis are decided based on consultation with the Director of the Advanced Manufacturing Concentration.
Two options are available for M.S. students: a thesis option and a comprehensive examination option. Both options require the completion of at least 12 courses of study.
Plan I. Thesis Option
For the thesis option, students are required to complete an original research project and write an M.S. thesis. A committee of three full-time faculty members is appointed to guide the development of the thesis. In addition, students are required to complete minimally 12 courses. At least eight courses as required: four core courses, four area of emphasis courses approved by the graduate advisor. Four units of MS Thesis Research in any Engineering Department count as the equivalence of one course. Up to three courses equivalent of MS Thesis Research. and up to one course (3-unit or 4-unit) of upper-division undergraduate elective courses taken as a graduate student at UCI can be applied toward the 12-course requirement.
Plan II. Comprehensive Examination Option
For the comprehensive examination option, students are required to pass a comprehensive exam. In addition, students are required to complete minimally 12 courses. At least ten courses must be taken as required: four core courses and at least six area of emphasis courses approved by the graduate advisor. Four units of Individual Research in any Engineering Department count as the equivalence of one course. One course equivalent of Individual Research in any Engineering Department and up to one course of upper-division undergraduate elective course taken as a graduate student at UCI can be applied toward the 12-course requirement.
In addition to fulfilling the course requirements outlined above, it is a University requirement for the Master of Science degree that students fulfill a minimum of 36 units of study.
Ozdal Boyraz (silicon photonics, nonlinear optics in silicon, cascaded cavity silicon Raman laser)
Peter J. Burke (nano-electronics, bio-technology)
Penghui Cao (fundamental understanding of the mechanisms by which materials plasticly deform adn fail, particularly in extreme environments)
Camilo Velez Cuervo [micro/nano robotics, micro/nano device fabrication, microfabrication of magnetic microsystems, magnetic micro/nanostructures, selective magnetization of micro patterns, microsystems (MEMS), biomedical microsystems, semiconductor devices and microfluidics]
Zhongping Chen (biomedical optics, optical coherence tomography, bioMEMS, and biomedical devices)
James C. Earthman (biomaterials, dental and orthopedic implants, green materials, nanocrystalline alloys, deformation and damage processes)
Rahim Esfandyarpour (nanotechnology and nanoscience, flexible electronics, MEMS and NEMS fabrication and modeling, stretchable and wearable bio devices, translational micro/nanotechnologies, biological and chemical sensors, microfluidics, microelectronics circuits and systems, physiological monitoring, Internet of Things(IOT) bio devices, technology development for personalized/precision medicine, and Point of Care(POC) diagnostics)
Franco De Flaviis (microwave systems, wireless communications, electromagnetic circuit simulations)
Manuel Gamero-Castaño (electric propulsion, with emphasis on colloid thruster technology for precision formation flying missions and Hall thrusters, electrohydrodynamic atomization of liquids and related problems like electrospray ionization and technological applications of electrosprays, aerosol diagnostics)
Alon A. Gorodetsky (cephalopods, adaptive materials, camouflage, bioelectronics)
Michelle Khine (development of novel nano- and micro-fabrication technologies and systems for single cell analysis, stem cell research, in vitro diagnostics)
David Kisailus (investigation of synthesis – structure and structure - property relationships in biological and biomimetic materials, development of multifunctional structural materials, synthesis and crystal growth of nanoscale materials for energy conversion, storage and environmental remediation)
Lawrence Kulinsky (micro- and nano-manufacturing, hybrid manufacturing, microfluidics, electrokinetic phenomena, BioMEs, personalized diagnostics, and drug delivery)
John C. LaRue (fluid mechanics, micro-electrical-mechanical systems (MEMS), turbulence, heat transfer, instrumentation)
Abraham Lee (Lab-on-a-Chip health monitoring instruments, drug delivery micro/nanoparticles, integrated cell sorting microdevices, lipid vesicles as carriers for cells and biomolecules, high throughput droplet bioassays, microfluidic tactile sensors)
Chin C. Lee (bonding technology, electronic packaging, acoustics, microwaves, semiconductor devices, thermal management)
Henry P. Lee (photonics, fiber-optics and compound semiconductorsphotonics, fiber-optics and compound semiconductors)
Jaeho Lee (Nanoscale heat transfer and materials engineering, targeting impact on semiconductor devices and energy conversion systems via metrology development)
Guann Pyng Li (high-speed semiconductor technology, optoelectronic devices, integrated circuit fabrication and testing)
Marc J. Madou (fundamental aspects of micro/nano-electro-mechanical systems [MEMS/NEMS], biosensors, nanofluidics, biomimetics)
Michael McCarthy (machine design and kinematic synthesis of spatial mechanisms and robots)
Farghalli A. Mohamed (mechanical behavior of engineering materials such as metals, composites and ceramics, the correlation between behavior and microstructure, creep, and superplasticity, mechanisms responsible for strengthening and fracture)
Ayman S. Mosallam (advanced composites and hybrid systems, seismic repair and rehabilitation of structures, blast mitigation and diagnostic/prognostic techniques for infrastructure security)
Daniel R. Mumm (development of materials for power generation systems, propulsion, integrated sensing advanced vehicle concepts and platform protection)
Xiaoqing Pan (atomic-scale structure, properties and dynamic behaviors of advanced materials including thin films and nanostructures for memories, catalysts, and energy conversion and storage devices)
Regina Ragan (exploration and development of novel materials systems for nanoscale electronic and optoelectronic devices)
Timothy J. Rupert (mechanical behavior, nanomaterials, structure-property relationships, microstructural stability, grain boundaries and interfaces, materials characterization)
Frank G. Shi (optoelectronic devices and materials, optoelectronic device packaging materials, optoelectronic medical devices and packaging, white LED technologies, high power LED packaging)
Andrei M. Shkel (design and advanced control of micro-electro-mechanical systems (MEMS), precision micro-sensors and actuators for telecommunication and information technologies, MEMS-based health monitoring systems, disposable diagnostic devices, prosthetic implants)
Lizhi Sun (CEE) (micro- and nano-mechanics, composites and nanocomposites, smart materials and structures, multiscale modeling, elastography)
William Tang (micro-electro-mechanical systems (MEMS) nanoscale engineering for biomedical applications, microsystems integration, microimplants, microbiomechanics, microfluidics)
Chen S. Tsai (integrated and fiber optics, devices and materials, integrated acoustooptics and magnetooptics, integrated microwave magnetics, Ultrasonic Atomization for Nanoparticles Synthesis, silicon photonics)
Lorenzo Valdevit, Director (multifunctional sandwich structures, thermal protection systems, morphing structures, active materials, MEMS, electronic packaging, cell mechanic)
Yoon Jin Won (multi-scale structures for thermal and energy applications, in particular fabrication, characterization, and integration of structured materials)
Albert Yee (nanofabrication of soft materials, physics of polymer thin films, nanomechanical properties of polymers, ultra-low-k dielectrics, fracture and toughening of polymer nanocomposites)