RF Design: Concepts and Technology | |
RF Specifications | |
Gain | |
Noise | |
Non-Linearity | |
Sensitivity | |
RF Device technology | |
Characterization and Modeling, Modeling, Cut-off Frequency, Maximum Oscillation Frequency, Input Limited Frequency, Output Limited Frequency, Maximum Available Bandwidth | |
Technology Choice, Double Poly Devices, Silicon-on-Anything, Comparison, SiGe Bipolar Technology, RF CMOS (updated for newer processes) | |
Passives | |
Resistors | |
Capacitors (updated for different layouts) | |
Planar Monolithic Inductors (updated as relation to newer processes)References (updated) | |
Antennas, Interface and substrate | |
Antennas | |
Bond wires | |
Transmission Lines | |
General Theory | |
Impedance Matching using Transmission Lines | |
Microstrip Lines and coplanar Lines | |
Bond Pads and ESD Devices | |
Bond Pads | |
ESD Devices, ggNMOST ESD Device, pn and np-diode ESD Device (updated for newer processes and detailed scaling effects) | |
Substrate | |
Substrate bounces | |
Design Techniques to Reduce the substrate bounceReferences (updated) | |
Low Noise Amplifiers | |
Specifications | |
Bipolar LNA designs | |
DCS applications in SOA, Design of the LNA, Measurements | |
Broadband LNA (new) | |
CMOS LNA Design | |
Single Transistor LNA, Design Steps, Simulation and Measurements | |
Classical LNA Design, The Design, Measurement Results | |
Broadband LNA (new)3.4 EvaluationReferences (updated) | |
Mixers | |
Specification | |
Bipolar Mixer Design | |
CMOS mixers | |
Active CMOS mixer | |
Passive CMOS mixer, 1/f-Noise in mixer transistors, 1/f-Noise due to IF amplifier, 1/f-noise due to Switched-Capacitor Behavior | |
Concluding remarksReferences (Updated) | |
Case study Receiver front-ends (new) | |
Bluetooth (new) | |
IEEE 802.11a Standard (new) | |
RF Power Amplifier | |
Specification | |
Efficiency | |
Generic Amplifier Classes | |
Heating | |
Linearity | |
Ruggedness | |
Bipolar PA design | |
CMOS PA Design | |
Linearization Principles | |
Predistortion Technique | |
Phase-Correcting feedback | |
Envelope Elimination and Restoration (EER) | |
Cartesian Feedback | |
Case study: Bluetooth PA (new)References (updated)Note: Oscillator chapter: errors removed and updated throughout, sub-section headings probably quite similar but to be defined | |
Oscillators | |
Introduction | |
Specifications | |
LC oscillator | |
Ring oscillators | |
Phase noise modelling and simulation (new) | |
Typical oscillator performance (new) | |
Oscillator case studies (new), Wide range oscillators for mobile applications, Oscillators for ultra low-power wireless links, 10GHz CMOS VCO for WLAN, 10GHz QuBIC VCO for SatelliteReferences (updated) | |
Frequency Synthesizers | |
Introduction | |
Integer-N PLL Architecture | |
Tuning System Specifications | |
Tuning Range | |
Minimum Step Size | |
Settling Time | |
Spurious Signals | |
Phase Noise Sidebands | |
System-level Aspects of PLL Building Blocks | |
Voltage Controlled Oscillators | |
Frequency Dividers | |
Phase-frequency Detector/Charge-Pump Combination, Polarity of the Feedback Signal, Time-domain Operation, High-frequency Limitations, Spectral Components of the Output Signal | |
Loop Filter, Passive Loop Filters, Active Loop Filters | |
Dimensioning of the PLL Parameters | |
Open- and Closed-loop Transfer Functions | |
Open-loop Bandwidth fc and Phase Margin fm | |
Spectral Purity Performance | |
Spurious Reference Breakthrough, Effect of Leakage Currents, Effect of Mismatch in the Charge-pump | |
Phase Noise Performance, Noise from PLL Blocks, The Equivalent Phase Noise Floor, Noise from Loop Filter and VCO, Total Phase Noise at Output of the PLL | |
Dimensioning of the PLL Loop Filter, Attenuation of Spurious Breakthrough, Phase Noise due to Loop Filter Resistor, Time Constant t2 and Capacitance C18.7 Design of fixed microwave Frequency Dividers (new), CMOS Implementation, Sensitivity measurements,Bipolar implementation, Sensitivity measurements | |
Design | |
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