On radiation modification ability in As–S/Se network glass formers obeying nanoconfined geometry
Abstract Radiation modification in network glass formers such as arseno-chalcogenide alloys As–X (X = S, Se) is examined accepting possibilities of volume restrictions in their realization. Destruction of covalent chemical bonds in these alloys under above bandgap light exposure or irradiation is accompanied by their relaxation in a new state. When this process occurs via switching of heteronuclear (As–X) bonds into homonuclear (As–As) and (X–X) ones, like under intrinsic decomposition in As 2 X 3 glass, an additional volume appears resulting in red shift of optical absorption edge. Assuming that double covalent bond-based X = As(X 1/2 ) 3 units are stabilized due to inner pressure in a glass structure caused by nanoconfined geometry, a blue shift in optical absorption edge is expected. This analysis based on quantum-chemical modeling of network-forming atomic clusters clarifies misunderstandings with these X = As(X 1/2 ) 3 units as principal species facilitating self-organization in As–X (X = S, Se) glassy networks. Computing the balance of energetic costs needed for hetero-to-homonuclear bond transition in stoichiometric As 2 X 3 glasses followed by transformation of single covalent bond-based clusters (As 2 X 4 ) into double covalent bond-based structural units X = As(X 1/2 ) 3 , it was confirmed the impossibility of such anomaly in glassy arsenoselenides as compared with arsenosulfides.
Authors
- R. Golovchak
- V. Balitska
- A. Kovalskiy
- M. Shpotyuk
- O. Shpotyuk
- M. Vakiv
- Y. Shpotyuk
Institutions
- Jan Długosz University (PL)
- Austin Peay State University (US)
- Lviv University (UA)
- Vlokh Institute of Physical Optics (UA)
- Electron (Ukraine) (UA)
- Lviv State University of Life Safety (UA)
- University of Rzeszów (PL)
Publication Details
- Journal
- The European Physical Journal Special Topics
- Published
- 2026-10-09
- DOI
- https://doi.org/10.1140/epjs/s11734-026-02607-1
- Primary Topic
- Phase-change materials and chalcogenides
- Type
- article
- Field-Weighted Citation Impact
- 0.00