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December 11, 2025Inorganic Chemistry5 citations

A Tb 3+ -Based Hybrid Rare-Earth Double Perovskite with Ferroelastic Switching and Long Photoluminescence Lifetime

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HZHongfei ZhaoZHZheng-Hui HuHLHao Liang

Key Points

  • This research aims to synthesize and analyze a Tb3+-based hybrid rare-earth double perovskite's multifunctional characteristics.
  • Synthesis of (HQ)4KTb(NO3)8 with HQ as quinuclidine cation.
  • Differential scanning calorimetry (DSC) analysis for thermal transitions.
  • Dielectric measurements to identify distinct dielectric states.
  • Polarized light microscopy to observe ferroelastic domains.
  • DSC analysis showed phase transitions at specific temperature pairs.
  • Identification of three distinct dielectric states across temperatures.
  • Observation of bright green emission and long fluorescence lifetime in the synthesized material.

Abstract

In recent years, hybrid rare-earth double perovskites (HREDPs) have garnered interest, owing to their significant optical properties. However, we will combine optical properties and other physical properties to promote the functional diversity of materials, so we report the successful synthesis of an HREDP, (HQ)4KTb(NO3)8 (1, HQ = quinuclidine cation), and investigate the structure-property relationships underlying its multifunctional characteristics. Differential scanning calorimetry (DSC) reveals two pairs of characteristic peaks at 262/288 K upon heating and at 254/282 K upon cooling. Dielectric measurements revealed three distinct dielectric states across the temperature range, affirming the phase-transition behavior. The reversible emergence of ferroelastic domains observed via polarized light microscopy further corroborated these transitions. Furthermore, 1 exhibits bright green emission characteristic of Tb3+, a long fluorescence lifetime, and a photoluminescence quantum yield (PLQY) of 5.0%. This work demonstrates the successful integration of ferroelasticity and long luminescence in a single material, offering a promising platform for the development of multimodal thermal-optical responsive devices.

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Cite This Study

Zhao et al. (2025) studied this question.

synapsesocial.com/papers/69401b1e2d562116f28f77b4https://doi.org/10.1021/acs.inorgchem.5c04681
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