TY - JOUR
T1 - Insight into the Temperature Evolution of Electronic Structure and Mechanism of Exchange Interaction in EuS
AU - Fedorov, A.V.
AU - Poelchen, Georg
AU - Eremeev, S.V.
AU - Schulz, Sven
AU - Generalov, Alexander
AU - Polley, Christian
AU - Laubschat, Clemens
AU - Kliemt, Kristin
AU - Kaya, Nusret
AU - Krellner, Cornelius
AU - Chulkov, Evgueni V.
AU - Kummer, K.
AU - Usachov, Dimitri Yu
AU - Ernst, Arthur
AU - Vyalikh, Denis V.
PY - 2021/9/2
Y1 - 2021/9/2
N2 - Discovered in 1962, the divalent ferromagnetic semiconductor EuS (T-C = 16.5 K, E-g = 1.65 eV) has remained constantly relevant to the engineering of novel magnetically active interfaces, heterostructures, and multilayer sequences and to combination with topological materials. Because detailed information on the electronic structure of EuS and, in particular, its evolution across T-C is not well-represented in the literature but is essential for the development of new functional systems, the present work aims at filling this gap. Our angle-resolved photoemission measurements complemented with first-principles calculations demonstrate how the electronic structure of EuS evolves across a paramagnetic-ferromagnetic transition. Our results emphasize the importance of the strong Eu 4f-S 3p mixing for exchange-magnetic splittings of the sulfur-derived bands as well as coupling between f and d orbitals of neighboring Eu atoms to derive the value of T-C accurately. The 4f-3p mixing facilitates the coupling between 4f and 5d orbitals of neighboring Eu atoms, which mainly governs the exchange interaction in EuS.
AB - Discovered in 1962, the divalent ferromagnetic semiconductor EuS (T-C = 16.5 K, E-g = 1.65 eV) has remained constantly relevant to the engineering of novel magnetically active interfaces, heterostructures, and multilayer sequences and to combination with topological materials. Because detailed information on the electronic structure of EuS and, in particular, its evolution across T-C is not well-represented in the literature but is essential for the development of new functional systems, the present work aims at filling this gap. Our angle-resolved photoemission measurements complemented with first-principles calculations demonstrate how the electronic structure of EuS evolves across a paramagnetic-ferromagnetic transition. Our results emphasize the importance of the strong Eu 4f-S 3p mixing for exchange-magnetic splittings of the sulfur-derived bands as well as coupling between f and d orbitals of neighboring Eu atoms to derive the value of T-C accurately. The 4f-3p mixing facilitates the coupling between 4f and 5d orbitals of neighboring Eu atoms, which mainly governs the exchange interaction in EuS.
UR - https://www.scopus.com/pages/publications/85114597659
U2 - 10.1021/acs.jpclett.1c02274
DO - 10.1021/acs.jpclett.1c02274
M3 - Article
SN - 1948-7185
VL - 12
SP - 8328
EP - 8334
JO - The Journal of Physical Chemistry Letters
JF - The Journal of Physical Chemistry Letters
IS - 34
ER -