<div class="csl-bib-body">
<div class="csl-entry">Niggas, A., Hao, M., Simperl, F., Blödorn, F., Bellissimo, A., Burgdörfer, J., Wilhelm, R. A., Libisch, F., & Werner, W. (2026). Identifying Electronic Doorway States in the Secondary Electron Emission of Layered Materials. In <i>MPS Madrid 2026 : International Conference on Many-Particle Spectroscopy of Atoms, Molecules, Clusters and Surfaces – MPS2026 : 22–25 June 2026 : Universidad Autónoma de Madrid, Spain : Book of Abstracts</i> (pp. 57–57).</div>
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dc.identifier.uri
http://hdl.handle.net/20.500.12708/229377
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dc.description.abstract
Secondary electron emission induced by low-energy electron impact (<200 eV) plays a central role in electron-surface interactions and surface-sensitive technologies. However, despite decades of research, the underlying mechanisms are not yet fully understood, particularly at low kinetic energies where the spectrum is often as- sumed featureless. Coincidence spectroscopy, i.e. detecting correlated pairs of scattered pri- mary and secondary electrons, has challenged this view by revealing well-defined spectral fea- tures. For example, the prominent 3.3 eV “X peak" in graphite [1] was explained through co- incidence spectroscopy as a two-step process: plasmon excitation followed by hybridisation of interlayer states [2].
Building on this, we investigate how low- energy electron emission evolves as graphite re- duces from a bulk layered system to truly two- dimensional materials. We present coincidence measurements of secondary electron emission by 173eV primary electrons from highly oriented pyrolytic graphite (HOPG) and quasi-freestand- ing bilayer and single-layer graphene. Surpris- ingly, our results reveal layer-number-dependent features: HOPG shows the strong 3.3 eV X-peak resonance, bilayer graphene exhibits a less in- tense feature at 7.7 eV, while single-layer gra- phene shows no pronounced resonance (Fig. 1).
Combined with density functional theory calculations, we identify these structures as Feshbach-type resonances: quasi-bound above- vacuum states that couple to free-electron states in vacuum and act as intermediate doorway states in the emission process. The existence and intensity of these resonances are highly sensitive to interlayer interactions, where the pronounced 3.3 eV resonance emerges only for systems with sufficient number of layers.
These results establish coincidence spectros- copy as a powerful tool for disentangling second- ary electron emission pathways and demonstrate that the low-energy regime provides a sensitive probe of unoccupied electronic band structure in low-dimensional materials. As an outlook, we will also discuss recent energy- and k-resolved studies offering complementary insights into emission dynamics.
en
dc.language.iso
en
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dc.subject
electron spectroscopy
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dc.subject
Secondary Electron Emission
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dc.subject
graphite
en
dc.subject
2D materials
en
dc.subject
coincidence spectroscopy
en
dc.subject
coincidence spectroscopy
en
dc.subject
density functional theory
en
dc.title
Identifying Electronic Doorway States in the Secondary Electron Emission of Layered Materials
en
dc.type
Inproceedings
en
dc.type
Konferenzbeitrag
de
dc.description.startpage
57
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dc.description.endpage
57
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dc.type.category
Abstract Book Contribution
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tuw.booktitle
MPS Madrid 2026 : International Conference on Many-Particle Spectroscopy of Atoms, Molecules, Clusters and Surfaces – MPS2026 : 22–25 June 2026 : Universidad Autónoma de Madrid, Spain : Book of Abstracts
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tuw.researchTopic.id
M1
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tuw.researchTopic.name
Surfaces and Interfaces
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tuw.researchTopic.value
100
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tuw.publication.orgunit
E134-03 - Forschungsbereich Atomic and Plasma Physics
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tuw.publication.orgunit
E136 - Institut für Theoretische Physik
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tuw.publication.orgunit
E056-04 - Fachbereich TU-DX: Towards Applications of 2D Materials