EPN-V2

ELI3740 Microelectronic Circuits and Systems Course description

Course name in Norwegian
Mikroelektriske kretser og systemer
Weight
10.0 ECTS
Year of study
2026/2027
Course history
  • Introduction

    Knowledge of microelectronic circuits and systems and associated design flows play a crucial role in integrated electronics. The subject is important in sustaining the growth in Norway and the global electronics industry to satisfy the requirements of many strategic sectors including energy efficient wearables and biomedical systems, internet of things and smart sensors, computing and communications, automation and robotics.

    The course covers fundamentals of microelectronic systems with emphasis on contemporary CMOS building blocks and architectures. In-class discussions highlight primary design metrics such as delay, power dissipation, energy, performance, noise, integration, cost, and cover the challenges of robust design flows. The theoretical learning will be supported by practical design assignments using Computer Aided Design (CAD) tools.

  • Recommended preliminary courses

    ELPE1300 Electrical Circuits, ELPE1400 Digital Technology, ELI2700 Electronics, or equivalent is recommended prior knowledge.

  • Required preliminary courses

    None

  • Learning outcomes

    After completing this course, the student will have the following learning outcomes, defined as knowledge, skills, and general competence:

    Knowledge:

    • Design flows in digital and analog CMOS microelectronics;
    • steady state and transient response of microelectronic building blocks,
    • automatic integrated circuit (IC) design synthesis using state-of-the-art tools,
    • fundamental design metrics used for comparing microelectronic solutions.

    Skills:

    On successful completion of the course, the student can:

    • interpret specifications of digital and analog microelectronic circuits and systems;
    • analyze CMOS circuits of medium to high complexity and verify using CAD simulations for robust functionality, performance, power and energy dissipation,
    • determine a method for delivering microelectronic circuit design based on specifications,
    • provide a microelectronic circuit solution to a mixed-signal electronics problem,
    • use Electronic Design Automation (EDA) tools to design and verify microelectronic circuits and systems,
    • consider implications of design and fabrication technologies on the operating characteristics of the microelectronic circuits and systems.

    General competence: 

    On successful completion of the course, the student is capable of:

    • resolving the functional and electrical characteristics of microelectronic circuits from specifications, whitepapers and datasheets;
    • determining a method to analyze the characteristics of original digital and analog circuits in microelectronics,
    • designing microelectronic systems using recurring topologies,
    • verifying the functionality and performance of microelectronic circuits through standard analysis techniques as well as CAD based simulations.
  • Content

    • Lectures and problem solving exercises associated with microelectronic circuits, including practical considerations in design and application;
    • Assignments to enhance understanding through practice,
    • Project work related to a relevant application.

  • Teaching and learning methods

    This course will feature weekly lectures. This will be supplemented by reading and problem solving, as well as practical assignments, which will include design and verification using EDA tools. The project will be carried out in groups of a size suited for the chosen project.

  • Course requirements

    None.

  • Assessment

    Portfolio assessment which includes the following:

    • 3 individual assignments with a submission for each that includes calculations, schematics and simulation-based verification.
    • a group project report, 2-3 students per group, that documents design and verification of microelectronic circuits for a problem related to biomedical engineering applications (maximum of 2000 words), and
    • a group presentation of the group project, 20-25 minutes

    The portfolio must be awarded a grade E or better for a student to successfully pass the course.

    In group work, the students’ different contributions must be reflected in the submitted work. Normally, all members of the group receive the same grade, but in exceptional cases, individual grades may be assigned within groups after further assessment. In such cases, all students in the relevant group will be informed that grades will be given individually before the grades are published.

    The exam can be appealed.

    In the event of an appeal, the written work will be reassessed, and the student must complete a new oral presentation. In the case of a group examination, the right to appeal is individual. This means that each group member may appeal only on their own behalf. A student who submits an appeal must complete the oral presentation individually. Failure to attend results in a grade of "not attended" for the entire course.

  • Permitted exam materials and equipment

    Alle hjelpemidler er tillatt, forutsatt at reglene for plagiat og kildehenvisning overholdes.

  • Grading scale

    Grade scale A-F.

  • Examiners

    One internal examiner. External examiner is used periodically.

  • Course contact person

    Ali Muhtaroglu

  • Overlapping courses

    This course has 10 ECTS overlap with the course Microelectronic Circuits and Systems.