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April 3, 2026Angewandte Chemie0 citationsOpen Access

Band Gap Tuneability in Antiperovskite‐Based Nitrides AE 3 Pn N and Imides AE 5 Pn 2 (NH) 2 ( AE = Ca, Sr; Pn = As, Sb, Bi)

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TCThanh G. ChauFWF. Alexander WolfJHJizhong Han

Key Points

  • The research explores the tunability of band gaps in antiperovskite nitrides and imides, focusing on their optoelectronic properties.
  • Synthesis of imide antiperovskites using ammonothermal method.
  • Crystal structures determined through single-crystal and powder X-ray diffraction.
  • Electronic structure analyzed using soft X-ray spectroscopy.
  • Density functional theory calculations conducted to evaluate properties.
  • Direct band gaps measured between 0.87–1.76 eV.
  • Antiperovskite compounds exhibit favorable transport and optical properties.
  • Observed differences in octahedral tilting correlated with ion size ratio.

Abstract

ABSTRACT Inorganic antiperovskites with the formula X 3 A N ( X = Ba, Sr, Ca, Mg; A = As, Sb) have recently been reported to exhibit excellent optoelectronic properties including small carrier effective masses, suitable direct bandgaps, high optical absorption coefficients as well as allowed optical transitions at the band edges. Using the ammonothermal method, we have synthesized the imide antiperovskites AE 5 Pn 2 (NH) 2 ( AE = Ca, Sr; Pn = As, Sb, Bi). The crystal structures of AE 5 Pn 2 (NH) 2 were solved and refined in the orthorhombic space group Pbam by single‐crystal x‐ray diffraction (scXRD), and further confirmed using powder X‐ray diffraction (pXRD) and Raman spectroscopy. Depending on the ion size ratio between AE 2+ and Pn 3– , different degrees of octahedral tilting can be observed. Soft X‐ray spectroscopy was used to study the band gap and electronic structure, and revealed the presence of oxygen impurities. The AE 5 Pn 2 (NH) 2 compounds can further react to form the ternary antiperovskites AE 3 Pn N. Density functional theory calculations reveal favorable transport and optical properties. Narrow direct band gaps in the range of 0.87–1.76 eV could be verified experimentally, making AE 5 Pn 2 (NH) 2 not only suitable as precursor materials for the corresponding AE 3 Pn N antiperovskites, but also as promising candidates for solar cell absorber materials.

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Cite This Study

Chau et al. (2026) studied this question.

synapsesocial.com/papers/69cf5e505a333a821460c8b2https://doi.org/10.1002/ange.1423389
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