Engineering PapersSearch

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.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

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

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related reports

Pnictogen-Bonding Catalysis: Copolymerization of CO 2 and Epoxides on Antimony(V) Platforms

The copolymerization of CO 2 and epoxides to access polycarbonates represents a promising strategy for CO 2 utilization and for the production of useful polymers. Aiming to explore alternative transition-metal-free approaches that support this chemistry, we have investigated a series of triaryl-catecholatostiboranes as pnictogen-bonding platforms for the copolymerization of CO 2 and cyclohexene oxide (CHO). Our survey of these antimony species has identified motifs that promote this polymerization reaction efficiently, provided that bis(triphenylphosphine)iminium chloride is administered as an activator. By coupling these polymerization studies with a careful assessment of the structure, electronic attributes and Lewis acidity of the catecholatostiboranes, this work shows that high activity is generally observed with the weakest pnictogen-bond donors or Lewis acids investigated. Mechanistic studies, which indicate that the polymerization reaction is first order in stiborane, reveal a nonlinear dependence on the CO 2 pressure. This nonlinear dependence could be satisfactorily modeled based on a pre-equilibrium process involving the reversible insertion of the gaseous monomer into the growing chain. Altogether these findings greatly expand the reach of pnictogen bond catalysis while also providing an entry for the use of heavy group 15 elements as competent platforms for CO 2 utilization.

antimony