Atomically thin, magnetic materials have recently gained a lot ofattention in the field of two-dimensional (2D) materials [1]. Singlemagnetic layers with critical temperature above room-temperature areextremely attractive for fundamental studies and promising candidatesfor future spintronic applications. However, probing the magnetic orderof the 2D systems by conventional magnetic experimental setups is verychallenging. On the other hand, it is well known that even in the singlelayer limit, semiconducting two-dimensional materials strongly absorblight. Therefore, optical spectroscopy is a good method for theircharacterization. In order to shed light on the intriguing phenomena of2D antiferromagnets (AFM), I will present our recent theoreticalinvestigations [2-7] in the framework of the density functional theory(DFT) considering optical properties of the layered materials. Inparticular, I will focus on the representative AFM family, transitionmetal phosphorus trisulfides (MPX3), in respect to other 2D materials. Iwill cover currently puzzling research issues in respect to opticalproperties of layered materials.
Refs:
[1] M. Gibertini, et.al [2] Nat. Nanotech. 14, 408 (2019).
[2] M. Birowska, et. al. Phys. Rev. B 103, L121108 (2021).
[3] C. Autieri, M. Birowska, et. al. J. Phys. Chem. C 126, 6791 (2022).
[4] R. Basnet, M. Birowska, et. al. Phys. Rev. Research 4, 023256(2022).
[5] E. Geraffy, M. Birowska, et. al. arxiv.org/pdf/2208.10890 [3](2022).
[6] M. Rybak, M. Birowska, et. al. arXiv:2308.13109v1 (2023).
[7] J. Strasdas, M.Birowska, et. al. arxiv:2211.05501, accepted in NanoLetters.
Uwaga
Seminarium w trybie Hybrydowym
Faculty of Physics room 0.06
link to remote mode:
https://zoom.us/j/7218838148szczegóły patrz instrukcja :
instrukcja: (pdf file)Attention
The seminar in the Hybrid mode
Faculty of Physics room 0.06
for details see instruction :
instruction: (pdf file) room 0.06, Pasteura 5 at 10:15

dr hab. Tomasz Antosiewicz, prof. UW (Instytut Geofizyki, Zakład Optyki Informacyjnej, Wydział Fizyki UW)
A nanoparticle antenna localizes the electromagnetic field in its vicinity, amplifying its intensity and proportionally increasing the efficiency of physical processes which depend of light. These properties stem from the shape, size, material, and environment and can be rationally tuned to investigate both fundmental properties of materials, as well as utilize nanoantennas in novel devices. My aim will be to introduce the role nanostructured optical antennas play in biosensing, light harvesting, material studies and strong light-matter interactions.
Uwaga
Seminarium w trybie Hybrydowym
Faculty of Physics room 0.06
link to remote mode:
https://zoom.us/j/7218838148szczegóły patrz instrukcja :
instrukcja: (pdf file)Attention
The seminar in the Hybrid mode
Faculty of Physics room 0.06
for details see instruction :
instruction: (pdf file) room 0.06, Pasteura 5 at 10:15

(IFD UW)
room 0.06, Pasteura 5 at 10:15

prof. dr hab. Marek Potemski (LNCMI_CNRS, Grenoble IHPP_PAS, Warsaw FP_UW, Warsaw)
Optical magneto-spectroscopy will be demonstrated to be a relevant tool in solid-state physics,that is used to determine the electronic properties of different materials,and in particular of the 2D materials (graphene, semiconductors, antiferromagnets) as well as 3D “Dirac-like” compounds.The characteristic band structure and effects of interactions (electron-electron, electron-phonon, magnon-phonon) revealed with our studies in these materials will be discussed.
Uwaga
Seminarium w trybie Hybrydowym
Faculty of Physics room 0.06
link to remote mode:
https://zoom.us/j/7218838148szczegóły patrz instrukcja :
instrukcja: (pdf file)Attention
The seminar in the Hybrid mode
Faculty of Physics room 0.06
for details see instruction :
instruction: (pdf file) room 0.06, Pasteura 5 at 10:15

dr hab. Włodzimierz Strupiński (VIGO Photonics S.A., 05-850 Ożarów Mazowiecki)
VIGO Photonics is a global manufacturer of semiconductor materials and devices for the photonics and microelectronics industry. The Company’s product line includes advanced III-V epi-wafers, infrared detectors, and infrared detection modules. VIGO delivers off-the-shelf, OEM, and non-standard solutions, allowing its customers to develop products dedicated to their novel applications. The epitaxy division focuses on GaAs- and InP-based compounds for applications in EEL, VCSEL, QCL lasers, CPV, TPV, photodetectors, and RF devices.
Review of challenges and achievements in MOCVD epitaxial growth of various epi-structures for photonic applications will be presented.
Uwaga
Seminarium w trybie Hybrydowym
Faculty of Physics room 0.06
link to remote mode:
https://zoom.us/j/7218838148szczegóły patrz instrukcja :
instrukcja: (pdf file)Attention
The seminar in the Hybrid mode
Faculty of Physics room 0.06
for details see instruction :
instruction: (pdf file)