Universität Wien

260076 VU Solid-State Quantum Optics: Exploring Light-Matter Quasiparticles (2024S)

5.00 ECTS (3.00 SWS), SPL 26 - Physik
Prüfungsimmanente Lehrveranstaltung

An/Abmeldung

Hinweis: Ihr Anmeldezeitpunkt innerhalb der Frist hat keine Auswirkungen auf die Platzvergabe (kein "first come, first served").

Details

max. 15 Teilnehmer*innen
Sprache: Englisch

Lehrende

Termine (iCal) - nächster Termin ist mit N markiert

  • Donnerstag 07.03. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 14.03. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 21.03. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 11.04. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 18.04. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Montag 22.04. 16:00 - 18:00 Kurt-Gödel-Hörsaal, Boltzmanngasse 5, EG, 1090 Wien
  • Donnerstag 25.04. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 02.05. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Mittwoch 08.05. 09:45 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 16.05. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 23.05. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 06.06. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 13.06. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Donnerstag 20.06. 10:00 - 12:30 Erwin-Schrödinger-Hörsaal, Boltzmanngasse 5, 5. Stk., 1090 Wien
  • Freitag 21.06. 09:00 - 12:00 Seminarraum Physik Sensengasse 8 EG

Information

Ziele, Inhalte und Methode der Lehrveranstaltung

Designed for Master and Ph.D. students, this advanced course offers a deep dive into the world of light-matter interactions. Starting with foundational aspects, participants will explore the semiclassical approach and comprehensive quantum descriptions. This includes the Jaynes-Cummings and Dicke models, as well as the quantum Rabi model accounting for the regime of deep strong light-matter interaction. As the curriculum progresses, it introduces a wide range of light-matter quasiparticles in the solid state, such as exciton-, plasmon-, magnon-, and phonon-polaritons. The course provides an overview of cutting-edge frontiers in the field, encompassing nonlinear and macroscopic quantum phenomena, with a particular focus on current methodology in quantum optics with polaritons in discrete and continuous variables. The course concludes with an overview of potential applications ranging from room temperature Bose-Einstein condensation and superfluidity of light to quantum optics with polaritons and cavity-controlled chemistry.

Subjects:
- Quantum picture of light-matter quasiparticles in solid-state physics.
- Polariton physics.
- Nonlinear Bose gas.
- Quantum phenomena under strong light-matter interaction.
- Quantum measurements in discrete and continuous variables.
- Bose-Einstein condensation and superfluidity in solid-state systems.
- Emerging fields in polariton physics: quantum geometries, cavity-controlled chemistry, etc.

Upon completion of the Solid State Quantum Optics course, you will be able to (intended learning outcomes):
˃ Comprehend the fundamental aspects of quasiparticle and polariton physics, providing a foundational understanding necessary for grasping current research trends within the fields of quantum optics and condensed matter physics.
˃ Apply theoretical models such as the Tavis-Cummings and Dicke models, as well as the quantum Rabi model, to effectively tackle eigenstate problems in solid-state quantum optics.
˃ Critically analyze new research developments in the field, assessing the originality, significance, and interdisciplinary nature of these works, along with the suitability of the methods employed.
˃ Acquire a broad perspective on the forefront of solid-state quantum optics, with particular focus on research methodology and state-of-the-art in the field.

The curriculum is structured to not only impart knowledge but also to equip you with the practical expertise and intellectual tools for your future endeavours in the field of solid-state quantum optics and light-matter interaction.
This is achieved through hybrid approach based on lectures, in-group and homework practical assignments, group activities and individual presentations.

Art der Leistungskontrolle und erlaubte Hilfsmittel

Evaluation will be conducted on the basis of regular weekly assignments, either in-class or as homework. You can achieve 100 points in total including
˃ 30 points for exercise problems you are able to present on the blackboard (corresponds to 100% of all problems solved)
˃ 40 points for a paper presentation (30 points for the written review and 10 points for the presentation)
˃ 30 points for oral examination at the end of the course.

Mindestanforderungen und Beurteilungsmaßstab

Minimal requirements for successful grading of the course
˃ Attendance at least 70%
˃ 15 points for class and homework exercises
˃ 20 points for paper review and presentation
˃ Pass oral exam at the end of the course (15 points min)

Grading scale:
Grade 1: 90+ points
Grade 2: 75+ points
Grade 3: 60+ points
Grade 4: 50+ points

Prüfungsstoff

Exercise aassignments (three sets) in the form of (guided) calculation/simulations will be handed out during the course and will be returned typically next week. The paper review / essay will be asked to prepare at the week 7 – 8 of the course and submitted for evaluation on the week 10 – 11, please find description for the task in a dedicated section below. The oral examination will cover the modules addressed throughout the course; you should expect to be asked three questions.

Literatur

˃ "Microcavities" by Alexey Kavokin, Jeremy J. Baumberg, Guillaume Malpuech, and Fabrice P. Laussy
˃ "Strong Light-Matter Coupling: From Atoms to Solid-State Physics" by Alexia Auffèves and Jean-Michel Gérard.
TBC

Zuordnung im Vorlesungsverzeichnis

M-VAF A 2, M-VAF B

Letzte Änderung: Di 18.06.2024 06:46