English

Photoemission insights into lanthanide-based crystals

Strongly Correlated Electrons 2026-07-31 v1

Abstract

The interplay of strongly localized 4ff electrons with itinerant spd-valence states gives rise to a wide range of correlated phenomena and properties that place lanthanide materials at the focus of considerable research efforts. Beyond the bulk, their surfaces are of particular interest, where the reduced coordination, a modified crystal electric field, broken inversion symmetry in combination with strong spin-orbit coupling, and the emergence of surface states and resonances considerably reshape 4ff-driven electronic and magnetic properties. This, in turn, enables novel functionalities of particular relevance for low-dimensional systems and their applications. This review summarizes how advances in photoelectron spectroscopies, together with improved crystal growth, have enabled detailed insights into bulk and surface phenomena of lanthanide-based crystals. After a brief overview of key developments from the 1970s to the 1990s, we discuss recent progress, focusing on systematic studies by the authors and collaborators that form a coherent line of research. These include the unveiling of kk-resolved fspdf-spd hybridization, the formation and evolution with temperature of ff-derived Fermi surface in Kondo lattices, layer-dependent 4ff magnetic anisotropy, the emergence of ferromagnetically ordered surfaces in systems with non-magnetic bulk ground state. This coherent line of research addresses core questions in the physics of 4ff systems and opens opportunities for engineering novel lanthanide-based architectures, including heterostructures and supramolecular complexes with novel physical properties and functionalities.

Keywords

Cite

@article{arxiv.2607.29166,
  title  = {Photoemission insights into lanthanide-based crystals},
  author = {Dmitry Yu. Usachov and Georg Poelchen and Vasily S. Stolyarov and Kristin Kliemt and Cornelius Krellner and Denis V. Vyalikh},
  journal= {arXiv preprint arXiv:2607.29166},
  year   = {2026}
}

Comments

Mesoscience & Nanotechnology, 1, 2026