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May 3, 20261 citations

Tailored Synthesis and Band-Structure Modulation in Nitrogen-Doped Perovskite Oxide Nanosheets.

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MKMakoto KOBAYASHIIOIssei OyabuHSHikaru Sugimoto

Key Points

  • This research aims to explore how nitrogen doping and cation substitution influence the electronic band structure of perovskite nanosheets.
  • Combination of cation substitution and nitrogen doping for material synthesis.
  • Alkali metal salt-assisted nitridation followed by aqueous treatment to achieve substantial nitrogen incorporation.
  • Direct determination of valence and conduction band edges using ultraviolet and inverse photoelectron spectroscopy.
  • Substantial nitrogen incorporation leads to nonmonotonic band alignment behavior.
  • Direct measurement reveals distinct band edges that optical methods cannot detect.
  • The transformation from pseudo-Ruddlesden-Popper phases to nanosheets preserves the original framework.

Abstract

, as a model platform, we demonstrate that the combination of cation substitution and nitrogen doping enables systematic modulation of both composition and electronic band structure in 2D perovskites. DJ-type perovskite oxynitrides with substantial nitrogen incorporation can be obtained via an unexpected transformation from pseudo-Ruddlesden-Popper-type phases, induced by alkali metal salt-assisted nitridation followed by simple aqueous treatment, without altering the anion composition. These oxynitrides are subsequently exfoliated into single-layer nanosheets that preserve the perovskite framework and the designed cation stoichiometry. Direct determination of both valence and conduction band edges by combined ultraviolet and inverse photoelectron spectroscopy reveals composition-dependent, nonmonotonic band alignment behavior that cannot be resolved by indirect optical or electrochemical approaches. This work establishes an integrated materials and characterization framework for the rational electronic-structure design in 2D oxynitride nanosheets.

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Cite This Study

KOBAYASHI et al. (2026) studied this question.

synapsesocial.com/papers/69f6e6478071d4f1bdfc6f25https://doi.org/10.1021/acs.inorgchem.6c01293
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