A tantárgyleírás hatályossága
Hatályosság kezdete:
2026. March 21.
Hatályosság vége:
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| Subject name (Hungarian, English) |
Elektronika
Electronics
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| Subject code | BMEVIEEA307 | ||||||||||||
| Subject type | — | ||||||||||||
| Training Level | — | ||||||||||||
| Course types and hours (weekly/semester) |
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| Assessment type | félévközi érdemjegy | ||||||||||||
| Credits | 4 | ||||||||||||
| Subject coordinator |
Kerecsen Istvánné
position: egyetemi docens
contact:
rencz@eet.bme.hu
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| Responsible department |
Elektronikus Eszközök Tanszéke
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| Faculty | Villamosmérnöki és Informatikai Kar | ||||||||||||
| Subject website | — | ||||||||||||
| Primary curriculum type | — | ||||||||||||
| Direct prerequisites – Strong prerequisite | none | ||||||||||||
| Direct prerequisites – Weak prerequisite | none | ||||||||||||
| Direct prerequisites – Parallel prerequisite | none | ||||||||||||
| Direct prerequisites – Milestone prerequisite | none | ||||||||||||
| Direct prerequisites – Exclusion | none |
Objectives
Programme
Introduction, the history of electronics and microelectronics. The basic laws of electronics, equivalent circuits, RC networks.
Introduction to semiconductor physics. Currents in semiconductors. The p-n junction and the operation of the semiconductor diode. The characteristic functions and application of the diode.
Computer aided design of diode circuits. Circuit design using a circuit simulator. Hand calculation methods. Diode logic, rectification, application examples.
The operation of current controlled sources. The bipolar transistor, modes of operation, characteristic functions, models. Calculation of transistor circuits.
The MOS capacitance. The operation of voltage controlled sources.The types of MOS transistors, characteristic functions models.
Integrated circuits. The rudiments of VLSI circuits and microelectronics technology. Introduction to the details of road maps. The elements of MOS circuits. The properties of wires. The elements of bipolar technology.
Digital circuits. The properties of an inverter. MOS inverters, basic and complex logic gates.
CMOS circuits, inverter, logic gates, complex gates, transfer gates, transfer gate circuits.
Different types of combinational logic realized with CMOS gates. Driver and I/O circuits. Monostable and bistable circuits used in sequential networks, registers, arithmetic elements.
Semiconductor memories. Mask programmed ROM, EPROM, EEPROM, FLASH memories, static and dynamic RAM memories.
Analog integrated circuit elements. Ideal and nonideal amplifiers, operational amplifier circuits. A/D and D/A converters.
The testing of integrated circuits - boundary scan.
ASICs (application specific integrated circuit) and their design methods.
Display toos (CRT, LCD, plasma display).
MEMS (micro electro mechanical system) structures.
The course includes laboratory session (1 hour / week)
Introduction to semiconductor physics. Currents in semiconductors. The p-n junction and the operation of the semiconductor diode. The characteristic functions and application of the diode.
Computer aided design of diode circuits. Circuit design using a circuit simulator. Hand calculation methods. Diode logic, rectification, application examples.
The operation of current controlled sources. The bipolar transistor, modes of operation, characteristic functions, models. Calculation of transistor circuits.
The MOS capacitance. The operation of voltage controlled sources.The types of MOS transistors, characteristic functions models.
Integrated circuits. The rudiments of VLSI circuits and microelectronics technology. Introduction to the details of road maps. The elements of MOS circuits. The properties of wires. The elements of bipolar technology.
Digital circuits. The properties of an inverter. MOS inverters, basic and complex logic gates.
CMOS circuits, inverter, logic gates, complex gates, transfer gates, transfer gate circuits.
Different types of combinational logic realized with CMOS gates. Driver and I/O circuits. Monostable and bistable circuits used in sequential networks, registers, arithmetic elements.
Semiconductor memories. Mask programmed ROM, EPROM, EEPROM, FLASH memories, static and dynamic RAM memories.
Analog integrated circuit elements. Ideal and nonideal amplifiers, operational amplifier circuits. A/D and D/A converters.
The testing of integrated circuits - boundary scan.
ASICs (application specific integrated circuit) and their design methods.
Display toos (CRT, LCD, plasma display).
MEMS (micro electro mechanical system) structures.
The course includes laboratory session (1 hour / week)
The laboratory sessions help students understand and memorize the materials covered in class. The tasks to accomplish during the semester are:
- simulation of a simple, 1-2 transistor nalog circuit (pl. common-emitter amplifier)
- gate level simulation of a MOS/CMOS logic gate
- application of a hardware definition language - a simple digital function is realized, tested and synthesised
- testing of the synthesised RTL code using a logic simulator
- realization of the synthesised circuit in an FPGA and the testing of the circuit using a development board
The course aims to familiarize students with the most important hardware elements of informatics and to show the opportunities and limitations of informatics provided by microelectronics.
Learning outcomes
Ez a tantárgy a KKK rendeletben meghatározott, következő kompetenciák fejlesztését szolgálja:
Knowledge
No learning outcomes recorded.
Skills
No learning outcomes recorded.
Attitudes
No learning outcomes recorded.
Autonomy and responsibility
No learning outcomes recorded.
Oktatási módszertan
Lectures and laboratory sessions
Tanulástámogató anyagok
Not provided.
Recommended preliminary knowledge for completing the subject
Knowledge type competencies
(azon előzetes ismeretek összessége, amelyek megléte nem kötelező, de a tantárgy eredményes teljesítését nagyban elősegíti)
Physics, Digital design
Skill type competencies
(azon előzetes képességek és készségek összessége, amelyek megléte nem kötelező, de a tantárgy eredményes teljesítését nagyban elősegíti)
nincs
Recommended (non-compulsory) preliminary competencies
(azon ajánlott (nem kötelező) előzetesen megszerzendő kompetenciák összessége, amelyek jelentősen hozzájárulnak a tantárgy eredményes teljesítéséhez)
Physics, Digital design
General rules
Requirements:
2 tests (on 7th and 13th week) -- they can be repeated they consist of two parts: 10 small questions and two problems (one of them is very simple)at least 60% of the small questions has to be answered correctly3 small tests
written during lecturesannounced on the preceding weektwo of the tree with highest points countone of them can be repeated at the end of the semesterGrade
70%: two tests, 30%: small testsThe questions for every single material are given at the end of each lecture.
Additional possibilities:
The tests can be repeated on the last week of the semester. If an average of 2 is not achieved, tests can be repeated according to the Code of Studies and Exams.
Assessment methods
In-term assessments
No detailed assessments provided.
Weight of in-term assessments
No weights provided.
Exam-period assessments
No detailed assessments provided.
Weight of exam elements
No weights provided.
Grade calculation
No grade thresholds provided.
Attendance requirements
No attendance requirements provided.
Rules for retake and resubmission
Not provided.
Short description
Not provided.
Detailed description
Not provided.
Recommended courses
Recommended: BMETE11AX01 Physics 1., BMETE11AX02 Physics 2., BMEVIMIA102 Digital Design 1., BMEVIMIA111 Digital Design 2.,
Workload to complete the subject
No workload breakdown provided.
Validity of subject requirements
Requirements valid from:
—
Requirements valid until:
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Curriculum placement
No curriculum placements recorded for this subject version.