DOE OSTI · 2587374
Atomic Structure, Dynamics, Changes in Chemical Bonding and Semiconductor-Metal Transition in Sb 2 Se 3 : A Remarkable Material for Quantum Networks and Energy Applications
Abstract
Antimony sesquiselenide has become an outstanding functional material for photovoltaics, energy storage and transformation, memory and photonic applications. Sb 2 Se 3 is one of the most successful emerging solar light absorbers and has also been identified as a highly promising ultralow-loss phase-change material (PCM) for next-generation coherent nanophotonic processors, photonic tensor cores, quantum and neuromorphic networks. Unlike benchmark telluride PCMs, Sb 2 Se 3 features a quasi-one-dimensional (1D) crystalline structure consisting of (Sb 4 Se 6 ) ∞ ribbons, lacks the typical PCM chemical bonding, and undergoes an extended semiconductor-metal transition above the melting point. Consequently, the origin of high optical contrast between crystalline (SET) and amorphous (RESET) logic states remains elusive and presents a significant challenge. Using high-energy X-ray diffraction and Raman spectroscopy over a wide temperature range, supported by first-principles simulations and complemented by thermal, optical and electrical measurements, as well as by 121 Sb-Mossbauer spectroscopy, the quasi-1D network of orthorhombic antimony sesquiselenide was found to undergo significant evolution in amorphous and supercooled Sb 2 Se 3 , leading to lower coordination, shorter interatomic distances and a higher p-electron density on antimony, indicating changes in chemical bonding. The observed novel Sb 2 Se 3 nanocrystalline polymorph, characterized by trigonal antimony coordination and more isolated Sb-Se ribbons, could help reduce multiple trapping defect states in the bandgap, which are typical of orthorhombic Sb 2 Se 3 , thereby enhancing the power-conversion efficiency of photovoltaic devices. Semimetallic and metallic liquid Sb 2 Se 3 exhibit a gradual transformation into a denser 2D and/or 3D network with higher antimony coordination. Localized electron states in the pseudogap are becoming extended, leading to an increase in electronic conductivity σ following the relationship σ ∝ N(E F ) 2 . Liquid Sb 2 Se 3 also appears to be strongly fragile, with a nonmonotonic change in viscosity and higher atomic mobility in the metallic liquid. Furthermore, these results explain extraordinary functionalities of Sb 2 Se 3 for photonic and energy applications.
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Kassem, Mohammad [Université du Littoral Côte d’Opale, Dunkerque (France)] (ORCID:0000000305120004), Benmore, Chris J. [Argonne National Laboratory (ANL), Argonne, IL (United States)] (ORCID:0000000170077749), Tverjanovich, Andrey [St. Petersburg State University (Russia)] (ORCID:0000000207958188), Bokova, Maria [Université du Littoral Côte d’Opale, Dunkerque (France)] (ORCID:0000000224191644), Khomenko, Maxim [Lomonosov Moscow State University (Russia)], Usuki, Takeshi [Yamagata University (Japan)] (ORCID:0000000247377708), Sokolov, Anton [Université du Littoral Côte d’Opale, Dunkerque (France)], Fontanari, Daniele [Université du Littoral Côte d’Opale, Dunkerque (France)], Bereznev, Sergei [Tallinn University of Technology (Estonia); Tallinn University of Technology, Kohtla-Järve (Estonia)], Ohara, Koji [Shimane University (Japan)] (ORCID:000000023134512X), Fourmentin, Marc [Université du Littoral Côte d’Opale, Dunkerque (France)], Masselin, Pascal [Université du Littoral Côte d’Opale, Dunkerque (France)], Bychkov, Eugene [Université du Littoral Côte d’Opale, Dunkerque (France)] (ORCID:0000000232921205). 2025-03-10. Atomic Structure, Dynamics, Changes in Chemical Bonding and Semiconductor-Metal Transition in Sb 2 Se 3 : A Remarkable Material for Quantum Networks and Energy Applications. https://doi.org/10.1021/acsami.5c00008
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