Faculty of Mathematics and Natural Sciences Department of Physics auf deutsch


in Arbeit, keine gültigen Zeiten/Räme
winter sem. 2024
Last update: 14.05.24 15:11:28



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WS 2024 SS 2025
WS 2024
WS 2023 SS 2024
Department of Physics
open chemistry
KVL / Klausuren / MAP 1st HS: 14.10  2nd HS: 09.12  sem.br.: 17.02  begin SS: 13.04

4020245061 Surface Science: Principles and Applications      VVZ  

VL
Fri 13-15
weekly BT 6 1'06 (0) Patrick Amsalem
UE
Fri 15-17
weekly BT 6 1'06 (0) Patrick Amsalem

Präsenzkurs

classroom language
EN
structure / topics / contents
Surface Science: Principles and Applications
The performance characteristics and functions of nowadays and emergent devices is basically defined by the surfaces and interfaces constituting these devices. This is easy to apprehend, especially when considering size reduction of components down to nanometer size, where surfaces/interfaces constitute most of the devices. Such advancement in technology has been in part made possible by the emergence of so-called “Surface Science”, a field of studies at the confluence of physics and chemistry, which started about 70 years ago. In this context, the point of this lecture is to provide the students with an overview of the basic concepts developed in surface science. This lecture addresses the general properties of surfaces, from a structural and (opto)electronic point of view.
Below, the details of the points that will discussed:
Introduction:
- What is surface science
- Why surface science is important
- Historical development

Structural properties:
1. Basic crystallographic properties of surfaces
- The basics of crystallography (e.g., unit cell, Bravais lattice, Wigner Seitz cells, indexation of the planes) that are needed for discussion in the context of surfaces.
- The basics to describe the real space structural properties of surfaces
- Going from real to reciprocal space and application by diffraction at surfaces with low energy electron diffraction

2. Structural properties of surfaces:
- The properties of real (model) surfaces (metal and semiconductor). Description of important surface reconstructions and impact on the surface electronic properties. Principles driving surface reconstruction.
- Atomic structure of surfaces covered with adsorbates: structural properties of interfaces, determination of surface phase composition.

3. Structural defect at surfaces:
- General considerations (structure, energy formation, …) about defects at surfaces (step edges, adatoms, vacancies, etc.)

4. Adsorption and desorption

Optoelectronic properties:
1. Recalling basics of solid states physics (e.g. Drude model, free and nearly-free electron model, density of states)

2. Derivation of the dielectric function of a free electron gas and of bound electrons and application to spectroscopy

3. Electronic properties of surfaces:
- condition for the emergence of surfaces states and the different types of surface states
- surface states at metal and semiconductor surfaces and correlation with surface reconstruction
- significance of surface states at semiconductor surfaces
- low-dimensional systems

Experimental techniques to investigate surfaces:
- Scanning tunneling microscopy (STM), low-energy electron diffraction (LEED)
- X-ray- and UV- Photoemission (XPS, UPS)
- Ultra-high vacuum technologies

assigned modules
P25.2.b
amount, credit points; Exam / major course assessment
4 SWS, 6 SP/ECTS (Arbeitsanteil im Modul für diese Lehrveranstaltung, nicht verbindlich)
Oral exam
other
the lecture will held in english
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