High‐pressure and high‐temperature synthesis of crystalline Sb3N5

Author:

Ceppatelli Matteo12ORCID,Serrano‐Ruiz Manuel2ORCID,Morana Marta3ORCID,Dziubek Kamil4ORCID,Scelta Demetrio12ORCID,Garbarino Gaston5ORCID,Poręba Tomasz5ORCID,Mezouar Mohamed5ORCID,Bini Roberto126ORCID,Peruzzini Maurizio2ORCID

Affiliation:

1. LENS European Laboratory for Non-linear Spectroscopy Via N. Carrara 1 I-50019 Sesto Fiorentino Firenze Italy

2. ICCOM-CNR Institute of Chemistry of OrganoMetallic Compounds National Research Council of Italy Via Madonna del Piano 10 I-50019 Sesto Fiorentino Firenze Italy

3. Dipartimento di Scienze della Terra Università degli Studi di Firenze Via G. La Pira 4 I-50121 Firenze Firenze Italy

4. Institut für Mineralogie und Kristallographie Universität Wien Josef-Holaubek-Platz 2 A-1090 Wien Austria

5. ESRF European Synchrotron Radiation Facility 71 Avenue des Martyrs CS40220, 38043 Grenoble Cedex 9 France

6. Dipartimento di Chimica “Ugo Schiff ” Università degli Studi di Firenze Via della Lastruccia 3 I-50019 Sesto Fiorentino Firenze Italy

Abstract

AbstractA chemical reaction between Sb and N2 was induced under high‐pressure (32–35 GPa) and high‐temperature (1600–2200 K) conditions, generated by a laser heated diamond anvil cell. The reaction product was identified by single crystal synchrotron X‐ray diffraction at 35 GPa and room temperature as crystalline antimony nitride with Sb3N5 stoichiometry and structure belonging to orthorhombic space group Cmc21. Only Sb−N bonds are present in the covalent bonding framework, with two types of Sb atoms respectively forming SbN6 distorted octahedra and trigonal prisms and three types of N atoms forming NSb4 distorted tetrahedra and NSb3 trigonal pyramids. Taking into account two longer Sb−N distances, the SbN6 trigonal prisms can be depicted as SbN8 square antiprisms and the NSb3 trigonal pyramids as NSb4 distorted tetrahedra. The Sb3N5 structure can be described as an ordered stacking in the bc plane of bi‐ layers of SbN6 octahedra alternated to monolayers of SbN6 trigonal prisms (SbN8 square antiprisms). The discovery of Sb3N5 finally represents the long sought‐after experimental evidence for Sb to form a crystalline nitride, providing new insights about fundamental aspects of pnictogens chemistry and opening new perspectives for the high‐pressure chemistry of pnictogen nitrides and the synthesis of an entire class of new materials.

Funder

Fondazione Cassa di Risparmio di Firenze

HORIZON EUROPE European Research Council

Publisher

Wiley

Subject

General Medicine

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