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FEKT-MPC-NAIAcad. year: 2026/2027
The course deals with moderately advanced methods of analog integrated circuits with respect to a more detailed understanding of the parasitic effects in terms of accuracy and noise. Used technologies (bipolar, CMOS and BiCMOS).The course content is:- Design and simulation of a small analog system- Methods for accurate design, calculation of matching (Matching Analysis)- Noise analysis in theory and in practicePractically-oriented exercises on real precision low-noise design of analog circuits.Computer exercises with usage of the advanced software packages (Cadence).
Language of instruction
Number of ECTS credits
Mode of study
Guarantor
Department
Entry knowledge
The knowledge on the Bachelor´s degree level is requested. Students should be able to explain and work with the basic electrical engineering principles and laws, in particular the theory of circuits (circuit variables, Ohm's law, Kirchhoff's laws). The prior completion of the course MPC-AIO (design and analysis of current mirrors, operational amplifiers, voltage bandgap references, etc.) is strongly recommended.
Rules for evaluation and completion of the course
To meet the overall assessment, at least 50% of points must be obtained from each of the two parts of the final exam.
The definition of supervised learning and the method of its implementation are determined by the annually updated decree of the course guarantor. Usually: the condition for credit is participation in computer laboratory exercises
Aims
Study aids
PC exercises: Electronic prezentations - tutorials (PPT)
Prerequisites and corequisites
Basic literature
Recommended reading
Classification of course in study plans
Lecture
Teacher / Lecturer
Syllabus
LECTURE OUTLINE OF THE MPC-NAI COURSE
1) OSCILLATOR BLOCK FOR PWM CONTROLLER- BG reference- Current reference - Vcc clamp (parallel regulator) - V-I converter with temperature stable offset - Two-ramp oscillator with VCO characteristic - Vcc reset - Vcc management (UVLO circuits) - Fault management circuits
2) FUNDAMENTALS OF PRECISION CIRCUIT DESIGN- the basic concept of precise design - basic relationships for calculating errors in analog circuits. Pelgrom's equation - Monte Carlo method - accurate transistor pair - precise current mirror - precise differential stage (mos/bipolar, resistive load, active load). - Precision two-stage operational amplifier - Calculation of the matching error using the match nomogram
3) NOISE
- Definition of the noise density and integral value of noise and theirrelation - Correlated and uncorrelated noise contribution - Noise characterization of active elements - Resistance noise and PN junction noise - Equivalent input noise of a bipolar transistor - Mos transistor noise, equivalent MOS transistor input noise - Basic concept of low noise design - Design of a low-noise diff stage (MOS, bipolar) - Noise of the differential stage with active load
4) DESIGN OF ACCURATE LOW NOISE BG REFERENCE- Basic principle of precise BG reference - Identification of the dominant error contribution - Principle of multiple dVbe - Accurate low-noise BG reference without additional filtering - Accurate low-noise BG reference with bypass capacity - Bypass capacity precharger circuits
5) DESIGN OF A PRECISION LOW-NOISE OPERATIONAL AMPLIFIER- Calculation/simulation of the minimum offset of the exact Opamp in the MOS and BJT process - Calculation/simulation of the minimum noise of precise Opamp in MOS and BJT process - Design of the second stage of precision Opmap (parallel/Miller frequency compensation) - Calculation of the error and the noise of the second stage - Design of the first stage of the precise Opamp and its gain determination- Frequency compensation, optimization of the phase margin
Exercise in computer lab
Outline of the subject MPC-NAI
- Getting to know IO (CADENCE) design tools. - Design and simulation of a small analog system (PWM controller for switching sources) - Calculation of the matching errors in analog circuits, Monte Carlo analysis - simulation, (a precise design of current mirror and differential stage) - Noise, calculation and simulation of the noise contributions, low-noise circuit design
Regular individual preparation for activities in the semester
Individual preparation for a final exam
Individual preparation for a small exam