6 EC
Semester 2, period 4
50922COM6Y
The quantum mechanical understanding of solids forms the basis for the technological explosion that is currently unfolding around us. Apart from this great societal importance, solids also harbor a secret world of physical miracles unrealized anywhere else in nature. From magnetic monopoles to M-theory black holes, it all emerges from the immense complexity of a near infinite number of interacting electrons. The overall aim of this course is to provide you with a solid understanding (pun intended) of basic and more advanced topics in contemporary condensed matter physics.
After a brief recap of some basic concepts from GM-1 we dive into the electronic structure of solids using the so-called tight binding approximation. With this scheme we can understand the basic electronic properties of any solid. We make a detour into the optical properties of solids to see how everyday colors around us come to be and how these can be explained using the electronic structure of solids. We then turn our attention to the complexity of interacting electrons under the influence of quantum mechanics. We will see how different manifestations of the electromagnetic interaction result in ordered electronic states, such as magnets and superconductors. During the course we will also touch upon the role of fundamental symmetries and how these provide a basis for understanding phase transitions between differently ordered states.
Syllabus
Hoorcollege en werkcollege.
|
Activiteit |
Aantal uur |
|
Hoorcolleges |
26 |
|
Werkcolleges |
12 |
|
Tentamen |
2 |
|
Tussentoets |
2 |
|
Vragenuur |
2 |
|
Zelfstudie |
124 |
Programme's requirements concerning attendance (TER-B):
| Item and weight | Details |
|
Final grade | |
|
1 (100%) Tussentoets |
The final grade is the average of the two grades. The final grade will only be given if both the mid term and final exam have been successfully passed (i.e. both > 5.5). You have to participate in both exams to be allowed to partake in the resit. The resit of the midterm will take place on the same day (and immediately following) as the final exam. The second resit will consist of only the final exam.
The date, time and location of the inspection moment are in the DataNose timetable.
The 'Regulations governing fraud and plagiarism for UvA students' applies to this course. This will be monitored carefully. Upon suspicion of fraud or plagiarism the Examinations Board of the programme will be informed. For the 'Regulations governing fraud and plagiarism for UvA students' see: www.student.uva.nl
|
Week |
Onderwerp |
Notes+Exc |
|
|
1 |
Inleiding: Basis GM-I |
CH. 1 |
|
|
1 |
Het Jellium model |
CH. 1 |
|
|
1 |
Tight-binding approximation |
CH. 1 |
|
|
2 |
Voorbij het ‘standaard model’ |
CH. 1 |
|
|
2 |
Classical EM of solids |
CH. 2 |
|
|
2 |
The dielectric function |
CH. 2 |
|
|
3 |
Electrons in magnetic fields |
CH. 3 |
|
|
3 |
Para/diamagnetisme |
CH. 3 |
|
|
3 |
vragenuurtje |
CH. 1-3 |
|
|
24 Feb. 2019 |
Deel Tentamen |
1+2 |
|
|
5 |
The Hubbard model |
4 |
|
|
5 |
Spontaneous magnetization |
4 |
|
|
5 |
Spinwaves |
4 |
|
|
6 |
Intro Superconductivity |
5 |
|
|
6 |
BCS theory 1 |
5 |
|
|
6 |
BCS theory 2 |
5 |
|
|
7 |
Experimental probes |
|
|
|
7 |
Theoretical outlook |
|
|
|
7 |
Vragenuur |
|
|
|
24 Mar. 2019 |
Tentamen |
|
|
|
‘Werkcollege’ |
Onderwerp (voorbeeld tentamenvraag) |
|
1 |
Jellium model |
|
2 |
Tight-binding bands of YBa2Cu3O7 |
|
3 |
Het Drude-Lorentz model, screening |
|
26 Feb. 2019 |
Deel Tentamen |
|
4 |
Spin operators & the Heisenberg model |
|
5 |
Anti-ferromagnetic Heisenberg model |
|
6 |
Superconductivity: Londen Eq. & Meissner effect |
|
26 Mar. 2019 |
Tentamen |
The schedule for this course is published on DataNose.
Recommended prior knowledge: Gecondenseerde materie 1, Quantumfysica 1 en 2, Elektriciteit en magnetisme, Thermische fysica.
If you have not followed Condensed Matter 1, the first two weeks will require a somewhat larger amount of time investment. However, the course is fully contained and all necessary knowledge will be discussed during lectures.