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Nanoelectronics and Nanotechnology

Nanoelektronika, nanotechnológia
A tantárgyleírás hatályossága
Hatályosság kezdete:
2026. March 21.
Hatályosság vége:
Subject name (Hungarian, English)
Nanoelektronika, nanotechnológia
Nanoelectronics and Nanotechnology
Subject code BMEVIEEMA00
Subject type
Training Level
Course types and hours (weekly/semester)
Course type lecture tutorial laboratory
hours (weekly) 2 1 0
type (linked/independent) derived course
Assessment type vizsga
Credits 4
Subject coordinator
DR. Neumann Péter Lajos
position: adjunktus
Responsible department
Elektronikus Eszközök Tanszéke
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

LECTURES

1. The manufacturing of electronic systems, physical, chemical and nano-technology approach for reviewing and classification the manufacturing processes.

2. Component and module circuit technology. Compound-semiconductor structures technology and applications: III-V and II-VI compound semiconductors, types of direct and indirect band structure, optical properties and their use, production and use of the compound semiconductor multilayers.

3. Preparation of single crystals. Epitaxial growth, oxide growth, chemical deposition, diffusion, ion implantation.

4. Isotropic and anisotropic etching. Production of three-dimensional structures (cavities, microchannels, membranes, tubes, needles, bridges, console, suspended weight). Technology versions for the bulk and surface micromachining.

5. Application of thin-film technologies for the production of passive networks, optical layer structures and displays (screens, etc).

6. Basics of the nanotechnology. Nanotubes, nano-wires, special multi-layer structures. Creating semiconductor nano-objects. Solid state and nano-mechanical properties of thin films. The allotrope modifications of carbon and their nanotechnology applications. The creation and use of metallic nanostructures.

7. The scale dawn resulting in physical phenomena of electronic devices and circuits, secondary effects (quantum mechanical, thermal ...) their influence on the characteristics of the electron devices and circuits.

8. Nanoelectronics devices and components (size reduced MOS transistors, vacuum microelectronics, single-electron circuits, memory cells, spintronics, quantum electronics, carbon nanotube transistors, graphene oxide electronics, thermal-electronic integrated circuits).

9. Quantum valley structures and their practical applications (eg. LEDs).  Application of the  nanotechnology in the thermal management of the classical semiconductor devices.

10. Special technological processes for the nanometer size systems, the top-down and bottom-up principle, nanolithography, self-adjusting, self-mounting.

11.   Test methods in the nanometer range, surface scanning test devices (AFM, STM, KFM, NSOM).

12. Importance of the simulation, overview of simulation methods in the nanoelectronics.

 
PRACTICES

1. Semiconductor laboratory visit, overview of all technological equipment.

2. Semiconductors surface conditions. Relationship between the surface potential barrier and the surface charge density. The surface conditions for various doping and different surface state densities.

3. Scale down in microelectronics. nanoelectronics and micromechanics: numerical consequences.

4. Presentation of scanning probe methods of measurement techniques, practical basics of the tunneling and atomic force microscopy. Evaluation and processing of AFM images (eg. leveling, artifact filtering, etc.).

5. Presentation of advanced scanning probe methods (EFM, MFM, KFM, SNOM, SCM, lithography etc).

6. Nanostructures production methods: top-down and bottom-up (vapor, liquid phase, solid phase methods, lithography),  practical application of nanostructures.

7. Allotropic modifications of the carbon, nanotechnology applications: graphite, diamond, fullerenes, carbon nanotubes, graphene.

 Course objective is the introduction into the new approach and new description methodology which are necessary for deeper understanding the operation, design and the process of micro-machining technologies.  Discussion on the physical phenomena is essential, concerning the electronic devices and components in the nanometer spatial and femtosecond time domain, especially for new devices and their operating principles based on the nanotechnology.  In the field of electronic technology the targets are the material science oriented basics used in the nanotechnology, physical and chemical properties due to the nanoscale structuring  and applicable test methods which are specific in the nanometer range.

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, laboratory and classroom excercises

Tanulástámogató anyagok

Online források
Mojzes Imre, Molnár László Milán: Nanotechnológia, Műegyetem; Kiadó (2007); Konczos Géza: Bevezetés a nanoszerkezetű anyagok világába,; Elte Eötvös Kiadó (2009); Bharat Bhushan: Springer Handbook of Nanotechnology,; Springer (2004); Bharat Bhushan: Handbook of Micro/Nano Tribology, CRC (1999); Rainer Waser: Nonoelectronics and Information Technology,; WILEY-VCH Verlag GmbH & Co. KGaA, Weinheim, (2005)

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)
nincs
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)
nincs
General rules
Requirements: one examination paper during the semester at satisfactory or better level written exam in the examination season Additional possibilities: The examination paper is reparable once during the semester. The replacement period, subject to payment of a separate fee repeated replacement procedure. We provide another chance to repair the examination paper after the end of the semester.
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
 Physics, electronics, microelectronics
Workload to complete the subject

No workload breakdown provided.

Validity of subject requirements
Requirements valid from:
Requirements valid until:
Curriculum placement

No curriculum placements recorded for this subject version.