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.

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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
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article

On radiation modification ability in As–S/Se network glass formers obeying nanoconfined geometry

R. Golovchak, V. Balitska, A. Kovalskiy, M. Shpotyuk et al.
The European Physical Journal Special Topics
Phase-change materials and chalcogenides
article

On radiation modification ability in As–S/Se network glass formers obeying nanoconfined geometry

R. Golovchak, V. Balitska, A. Kovalskiy, M. Shpotyuk, O. Shpotyuk, M. Vakiv, Y. Shpotyuk
article en

Abstract

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.

The European Physical Journal Special Topics
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)
Openalex Percentile: Top 28%
Phase-change materials and chalcogenides
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On radiation modification ability in As–S/Se network glass formers obeying nanoconfined geometry — R. Golovchak, V. Balitska, et al. · The European Physical Journal Special Topics (2026) | TGRS Research Map | TGRS