Catalog Continuing Education Courses

Similar documents
RF-MEMS Devices Taxonomy

RF MEMS for Low-Power Communications

Advanced RF MEMS CAMBRIDGE UNIVERSITY PRESS. Edited by STEPAN LUCYSZYN. Imperial College London

Introduction to Microeletromechanical Systems (MEMS) Lecture 12 Topics. MEMS Overview

Presented in two parts is an overview of MEMS FOR RF/MICROWAVE WIRELESS APPLICATIONS: THE NEXT WAVE TUTORIAL

MEMS for RF, Micro Optics and Scanning Probe Nanotechnology Applications

DESIGN AND ANALYSIS OF RF MEMS SWITCHABLE LPF L. Sirisha Vinjavarapu* 1, P. Venumadhav 2

Study of MEMS Devices for Space Applications ~Study Status and Subject of RF-MEMS~

Simulation of Cantilever RF MEMS switch

RF(Radio Frequency) MEMS (Micro Electro Mechanical

Vibrating RF MEMS for Low Power Wireless Communications

MEMS Technologies and Devices for Single-Chip RF Front-Ends

A RECONFIGURABLE IMPEDANCE MATCHING NETWORK EMPLOYING RF-MEMS SWITCHES

DEVELOPMENT OF RF MEMS SYSTEMS

COMMUNICATION ENGINEERING RESEARCH AREA

To design Phase Shifter. To design bias circuit for the Phase Shifter. Realization and test of both circuits (Doppler Simulator) with

A Novel Thin Film Bulk Acoustic Resonator (FBAR) Duplexer for Wireless Applications

MEMS and Nanotechnology-Based Sensors and Devices for Communications, Medical and Aerospace Applications

RF/Microwave Circuits I. Introduction Fall 2003

Micromechanical Circuits for Wireless Communications

Conference Paper Cantilever Beam Metal-Contact MEMS Switch

Modelling and Simulation of Piezoelectric Cantilevers in RF MEMS Devices for Energy Harvesting Applications

Interdigital Bandpass Filter Using capacitive RF MEMS Switches

Accurate Simulation of RF Designs Requires Consistent Modeling Techniques

Power Handling Capability of High-Q Evanescentmode RF MEMS Resonators with Flexible Diaphragm

MONOLITHIC INTEGRATION OF RF MEMS SWITCH AND GAAS-MMIC PROCESS FOR RF SENSING APPLICATIONS

RF MEMS Circuits Applications of MEMS switch and tunable capacitor

38050 Povo Trento (Italy), Via Sommarive 14 TIME CHARACTERIZATION OF CAPACITIVE MEMS RF SWITCHES

Low Actuation Wideband RF MEMS Shunt Capacitive Switch

Micromachined Switches and Relays

RF AND MICROWAVE ENGINEERING

Fachbereich Informatik und Elektrotechnik Ubicomp. Ubiquitous Computing. Ubiquitous Computing, Helmut Dispert

Conjoined Rectangular Beam Shaped RF Micro-Electro- Mechanical System Switch for Wireless Applications

Forum for Electromagnetic Research Methods and Application Technologies (FERMAT) MC-5

Micro- and nano-scale switches and tuning elements for microwave applications

WIDE-BAND circuits are now in demand as wide-band

Improvement of Stopband Performance OF Microstrip Reconfigurable Band Pass Filter By Defected Ground Structure

DTIC. Defense Technical Information Center Part Notice. This paper is a part of the following report:

Tunable RF and Microwave Filters

MEM Switches Dr. Lynn Fuller, Artur Nigmatulin, Andrew Estroff

A Novel Electromechanical Interrogation Scheme for Implantable Passive Transponders

Hot Topics and Cool Ideas in Scaled CMOS Analog Design

Copy Right to GARPH Page 5

Vibrating MEMS resonators

Figure 1 : Topologies of a capacitive switch The actuation voltage can be expressed as the following :

Integration of AlN Micromechanical Contour- Mode Technology Filters with Three-Finger Dual Beam AlN MEMS Switches

A 5.8-GHz Planar Beam Tracking Antenna Using a Magic-T

MEMS Technologies for Communications

Academic Course Description SRM University Faculty of Engineering and Technology Department of Electronics and Communication Engineering

Synthesis of Optimal On-Chip Baluns

Design of RF MEMS Phase Shifter using Capacitive Shunt Switch

A Top-Down Microsystems Design Methodology and Associated Challenges

RF Board Design for Next Generation Wireless Systems

Advanced RF MEMS, ed. Stepan Lucyszyn. Published by Cambridge University Press. C Cambridge University Press 2010.

Band-Reconfigurable High-Efficiency Power Amplifier 900 MHz/1900 MHz Dual-Band PA Using MEMS Switches

Work Done. RF Circuits / Systems Designed and Fabricated

Visit: rf.cdiweb.com Toll-Free:

RF MEMS in Wireless Architectures

Flexible Hybrid Electronics Fabricated with High-Performance COTS ICs using RTI CircuitFilm TM Technology

Design of Controlled RF Switch for Beam Steering Antenna Array

New Type of RF Switches for Signal Frequencies of up to 75 GHz

ENABLING TECHNOLOGY FOR ULTRALOW-COST RF MEMS SWITCHES ON LTCC

Progress Towards Computer-Aided Design For Complex Photonic Integrated Circuits

NONLINEAR CHARACTERISATION OF RECONFIGURABLE ANTENNAS

Beam-Scanning Reflectarray Antennas

Low Power Systems for Wireless Microsensors

RECONFIGURABLE ANTENNAS AS AN ENABLING TECHNOLOGY FOR SDR

Research Article A Parallel-Strip Balun for Wideband Frequency Doubler

EE C245 ME C218 Introduction to MEMS Design Fall 2010

ELECTRONICALLY SCANNED ARRAYS USING MICRO ELECTRO MECHANICAL SWITCH (MEMS) TECHNOLOGY

A Bandgap Voltage Reference Circuit Design In 0.18um Cmos Process

3D Integration Using Wafer-Level Packaging

RF Circuit Synthesis for Physical Wireless Design

11:20-13:00 Lunch 14:20-16:00. WS-01 GaN HEMT Characterization and Modeling for micro- and mm-wave Power Amplifier Applications

Passive Microwave Products. Facts - Products - Applications

PRACTICAL BROADBAND MICROSTRIP FILTER DESIGN AND IMPLEMENTATION METHOD

A NOVEL MICROSTRIP LC RECONFIGURABLE BAND- PASS FILTER

A 60 GHz Digitally Controlled Phase Shifter in CMOS

EE C245 ME C218 Introduction to MEMS Design

Glass Packaging for RF MEMS

ECEN474/704: (Analog) VLSI Circuit Design Fall 2016

Low Power Communication Circuits for WSN

PROGRAMMABLE PHOTONIC ICS:

LOW LOSS FERROELECTRIC BASED PHASE SHIFTER FOR HIGH POWER ANTENNA SCAN BEAM SYSTEM

A Core-Displacement Method Tunable Inductor using Micro-Electro-Mechanical-Systems

Demand Response: Passive Proximity Electric Sensing EECS Department and the Berkeley Sensor & Actuator Center (BSAC)

DC~18GHz Wideband SPDT Switch Chengpeng Liu 1, a, Zhihua Huang 1,b

Design and Simulation of Compact, High Capacitance Ratio RF MEMS Switches using High-K Dielectric Material

A Review of MEMS Based Piezoelectric Energy Harvester for Low Frequency Applications

A Phase Diversity Printed-Dipole Antenna Element for Patterns Selectivity Array Application

Feasibility of MEMS Vibration Energy Harvesting for High Temperature Sensing

CHAPTER 2 RF MEMS BASICS. 2.1 Switches for Microwave Applications

PAR4CR: THE DEVELOPMENT OF A NEW SDR-BASED PLATFORM TOWARDS COGNITIVE RADIO

High Power RF MEMS Switch Technology

Research Article Wideband Microstrip 90 Hybrid Coupler Using High Pass Network

Transistor Radio Circuit Design Lecture Notes

A Reconfigurable Micro-strip Patch Antenna for Various Wireless and Cognitive Radio Applications

Emerging MEMS & Sensor Technologies to Watch: Alissa M. Fitzgerald, Ph.D., Founder & CEO Semicon West 2018

PLANAR BEAM-FORMING ARRAY FOR BROADBAND COMMUNICATION IN THE 60 GHZ BAND

Design of a 9GHz, 7dB Branchline Coupler with 180 Phase Shift at Outputs

Transcription:

Catalog Continuing Education Courses NanoMEMS Research, LLC P.O. Box 18614 Irvine, CA 92623-8614 Tel.: (949)682-7702 URL: www.nanomems-research.com E-mail: info@nanomems-research.com 2011 NanoMEMS Research, LLC. All Rights Reserved. 1

Index 1. Introduction to RF/Wireless MEMS Technology and Commercialization.3 2. RF MEMS Circuit Design for Wireless Communications..4 3. Fundamentals of Nanotechnology...5 4. MEMS in RF and Microwave Electronics...6 5. Hands-On RF MEMS Design..7 2011 NanoMEMS Research, LLC. All Rights Reserved. 2

Introduction to RF/Wireless MEMS Technology and Commercialization Microelectromechanical Systems (MEMS) applications in RF and microwave electronics are on the verge of revolutionizing wireless communications. In this course we discuss the fundamentals of this exciting technology, potential pitfalls to be encountered, and typical applications where MEMS is expected to make the greatest impact in RF/microwave circuits and systems. In particular, the ability of MEMS fabrication techniques to enhance the performance of passive components, e.g., capacitors, inductors, transmission lines, and switches, is addressed, and a number of potential wireless system opportunities, namely, wireless transceivers, routing networks, and tracking antennas for mobile multimedia communications, awaiting the maturation of MEMS, are discussed. Who Should Attend: Students, engineers, designers, manufacturers, marketing and business development managers, and executives currently involved in the study, development, or manufacturing of wireless systems for both commercial and defense markets. Motivation behind RF/Wireless MEMS Technology The fundamentals Physics of RF MEMS Devices Fundamental applications of RF MEMS to Devices, Circuits and Systems Opportunities for RF MEMS Insertion and Commercialization 1 Overview of Microelectromechanical Systems MEMS Origins. MEMS Fabrication Technologies Course Outline 2 Fundamental MEMS Device Physics Actuation. Mechanical Vibrations. Computer-Aided Design of MEMS 3 Fundamental MEMS Devices: The MEM Switch The Cantilever Beam MEM Switch. MEM Switch Design Considerations 4 Fundamental MEMS Devices: The MEM Resonator The Cantilever Beam MEM Resonator. MEM Resonator Design Considerations 5 Microwave MEMS Applications MEM Switches. Micromachining-Enhanced Planar Microwave Passive Elements. MEM Resonators 6 MEMS-Based Microwave Circuits and Systems Wireless Communications Systems. MEMS-Based RF and Microwave Circuits 7 RF/Wireless MEMS Insertion and Commercialization Number of Hours Required for Completion: 6 hours 2011 NanoMEMS Research, LLC. All Rights Reserved. 3

RF MEMS Circuit Design for Wireless Communications Microelectromechanical systems (MEMS) technology is on the verge of revolutionizing RF and Microwave wireless applications. As the requirements of present day and future wireless systems for lower weight, volume, power consumption and cost with increased functionality, frequency of operation and component integration become more and more demanding, the potentialities of the RF MEMS arsenal to meet these requirements, by enabling new wireless components and system architectures, are becoming ever more attractive. In this course we address the key practical aspects on which one must be well versed to succeed in exploiting this technology as well as its salient emerging applications. Who Should Attend: Students, engineers, designers, manufacturers, marketing and business development managers, and executives currently involved in the study, development, or manufacturing of wireless systems for both commercial and defense markets. Motivation for applying RF MEMS in Wireless Systems The elements of RF Circuit Design The nature of Circuit Elements Enabled by RF MEMS and Their Applications Case Studies on the Application of RF MEMS Devices in Circuit Design for Wireless Systems Course Outline 1. Wireless Systems A Circuits Perspective 2. Elements of RF Circuit Design Physical Aspects of RF Circuit Design. Practical Aspects of RF Circuit Design 3. RF MEMS-Enabled Cicruit Elements and Models RF/Microwave substrate properties. Micromachined-Enhanced Elements MEM switches. Resonators. MEMS modeling 4. Novel RF MEMS-Enabled Circuits Reconfigurable Circuit Elements. Reconfigurable Circuits. Reconfigurable Antennas 5. RF MEMS-Based Circuit Design Case Studies Phase Shifters. Filters. RF MEMS oscillators. Number of Hours Required for Completion: 6 hours 2011 NanoMEMS Research, LLC. All Rights Reserved. 4

Fundamentals of Nanotechnology The fundamentals of the field of nanotechnology are introduced, in particular, the main fabrication challenges and opportunities at the nanoscale, together with the emerging approaches to mass production. Who Should Attend: Students, engineers, designers, manufacturers, marketing and business development managers, and executives who are curious about why nanotechnology has elicited so much interest (e.g. NSF s National Nanotechnology Initiative) and is perceived by many as the foundation for the next industrial revolution. The main fabrication challenges and opportunities at the nanoscale The approaches to mass production at the nanoscale The plethora of potential applications of nanotechnology Course Outline 1. Fabrication Techniques 2. Imaging and Manipulation Tools at the Nanoscale 3. Nanoscale Devices and Circuits Number of Hours Required for Completion: 3 hours 2011 NanoMEMS Research, LLC. All Rights Reserved. 5

MEMS in RF and Microwave Electronics Microelectromechanical Systems (MEMS) applications in RF and microwave electronics are on the verge of revolutionizing wireless communications. In particular, RF MEMS promises to endow wireless handsets, base stations and satellites with the key properties of low-power consumption and reconfigurability, which in turn will enable superior functionality and performance. In this course, a comprehensive exposition of the state-of-the-art in MEMS technology applied to RF devices, circuits and systems is given. The topics to be presented include: RF MEMS fabrication technology, MEMS Actuators, Passive devices (Transmission Lines, Capacitors, Inductors, Switches, Varactors, Resonators), Circuits (Filters, Oscillators, Phase Shifters, Couplers), Systems (Transceivers, etc.) Who Should Attend: Students, engineers, designers, manufacturers, marketing and business development managers, and executives currently involved in the study, development, or manufacturing of wireless systems for both commercial and defense markets. This course in aims at getting interested parties informed on: RF MEMS fabrication processes, devices, circuits, systems, packaging, reliability and CAD How to apply RF MEMS technology to create superior wireless systems How to evaluate competing RF MEMS devices and technologies in light of your capabilities, applications and budget. How to identify opportunities for RF MEMS insertion in wireless applications. Outline 1 Overview of RF MEMS Technology and Applications 2 RF MEMS fabrication technology Fabrication techniques. Materials available. Technologies for microwave and millimeter wave applications: Bulk and surface micromachining. Fabrication of movable MEMS. Power handling issues. 3D integration of MEMS with IC's. 3 Passive Devices Transmission Lines. Capacitors. Inductors. MEM Switches. Varactors. 4 RF MEMS Phase Shifters 5 RF MEMS-Based Resonators, Filters and Oscillators 6 FBAR Resonators and Applications 6 RF MEMS Packaging 7 RF MEMS Reliability 8 RF MEMS-Based Architectures & Front-Ends Number of Hours Required for Completion: 18 hours 2011 NanoMEMS Research, LLC. All Rights Reserved. 6

Hands-On RF MEMS Design This course introduces the student to the methodology and tools utilized in the design of RF MEMS. In particular, by utilizing a case-study as learning vehicle, the student is given a practical hands-on opportunity to learn and exercise the CAD tools commonly used to conduct the mechanical and electromagnetic design aspects of an RF MEMS device. The student will be provided with temporary licenses to mechanical and electromagnetic simulators. Who Should Attend: Students, scientists and engineers, with a background in conventional RF/microwave design, who wish to expand their knowledge to include RF MEMS design, and those with a background in the general MEMS field who wish to learn about RF MEMS design. RF MEMS Device Physics RF MEMS mechanical design RF MEMS electromagnetic design Outline 1 RF MEMS Devices Physics. Electrostatic Implementations. Design Methodology. 2. RF MEMS Mechanical Design Layout. Meshing. Problem Setup. Actuation. Resonance Frequencies. Visualization 3. RF MEMS Electromagnetic Design Layout. Problem Setup. S-Parameters Simulation. Visualization Number of Hours Required for Completion: 18 hours 2011 NanoMEMS Research, LLC. All Rights Reserved. 7