15015 - Interfacial Engineering and 2D Semiconductors for Post Moore Nanoelectronics Modulübersicht

Module Number: 15015
Module Title:Interfacial Engineering and 2D Semiconductors for Post Moore Nanoelectronics
  Grenzflächen-Engineering und 2D-Halbleiter für die Post-Moore Nanoelektronik
Department: Faculty 1 - Mathematics, Computer Science, Physics, Electrical Engineering and Information Technology
Responsible Staff Member:
  • Prof. Dr. rer. nat. habil. Flege, Jan Ingo
Language of Teaching / Examination:English
Duration:1 semester
Frequency of Offer: Every winter semester
Credits: 6
Learning Outcome:

Upon successful completion of the module, students understand the principles of interfacial band engineering central to modern micro– and nanoelectronics. They are able to construct and analyze band diagrams across a wide range of material systems and interfaces, and relate band alignment to the operation of fundamental electronic building blocks. Students can apply these concepts to diverse thin–film and 2D semiconductor heterostructures, gaining insight into interface functionality and pathways for device optimization.

Contents:
  • A brief introduction to solid–state physics: Hall experiment and holes as carriers, Bloch’s theorem, Kronig-Penney model, k–space concept, E(k) relation, parabolic approximation, effective mass, doping in semiconductors.
  • p-n junction as the simplest example of the band alignment and the rules on how to construct interfacial band diagrams
  • metal-SC junction, Shottky contacts, Fermi level pinning, MIGs, mirror charges
  • semiconductor-insulator interface, interfacial charge traps, interfacial dipoles, Coulomb drag
  • A brief overview of the MOS capacitor from the perspective of the band diagrams, planar MOSFETs and modern non-planar MOS-FET geometries in Si-based electronics.
  • Memory elements: Charge–trap memory, DRAM, SRAM, CCDs vs CMOS detectors
  • Brief introduction to deep learning and the challenges for von Neuman-based architectures
  • Beyond von Neuman architectures NPUs, MPUs, VMMPs, and the concept of neuromorphic electronics
  • Neuromorphic elements: memory transistors, FeRAM, FeFETs, NPUs, MPUs, VMMPs
  • 2D electron gas in electronics: III–V semiconductors, HEMTs, TDs, RTDs
  • In brief IV-IV semiconductor interfaces and the prospects of solid-state quantum computing
  • Magnetism in solid-state devices: MTJs and SST–MRAMs
  • 2D materials–based electronics
Recommended Prerequisites:

Sound knowledge of solid-state physics, enthusiasm for microelectronics

Mandatory Prerequisites:None
Forms of Teaching and Proportion:
  • Lecture / 2 Hours per Week per Semester
  • Self organised studies / 150 Hours
Teaching Materials and Literature:
  • Lecture notes provided prior to the lectures
  • list of the literature (selected works):
    • Yu & Cardona — Fundamentals of Semiconductors
    • Sze & Ng — Physics of Semiconductor Devices
    • Waser — Nanoelectronics and Information Technology
Module Examination:Final Module Examination (MAP)
Assessment Mode for Module Examination:
  • Oral exam, 45 min  or
  • presentation on given topic that goes beyond the course, 15 min + 30 min questions

Students may choose between the two exam options.

Evaluation of Module Examination:Performance Verification – graded
Limited Number of Participants:None
Part of the Study Programme:
  • Master (research-oriented) / Micro- and Nanoelectronics / PO 2024
  • Master (research-oriented) / Physics / PO 2021
Remarks:
  • Study programme Micro- and Nanoelectronics M.Sc.: Compulsory elective module in complex „Technology and Devices"
  • Study programme Physics M.Sc.: Compulsory elective module in complex „Physical Specialization with Experimental Focus”, topic area „Nanophysics"
Module Components:
  • Lecture Interfacial Engineering and 2D Semiconductors for Post Moore Nanoelectronics
Components to be offered in the Current Semester: