<p>The magnetocaloric (MC) responses of various rare-earth (RE)-dominated magnetic solids have been extensively investigated recently to develop high-performing MC materials for cryogenic cooling applications. Herein, we fabricated a family of single-phase RE-dominated magnetic ceramics, RE<sub>3</sub>NbO<sub>7</sub> (RE = Gd, Dy, Ho, and Er), via solid-state reactions and determined their structural and magnetic properties, specifically their cryogenic MC responses, through experiments and theoretical calculations. The prepared RE<sub>3</sub>NbO<sub>7</sub> ceramics all crystallize in the orthorhombic weberite-type structure (space group C222<sub>1</sub>, No. 20). The constituent elements are uniformly distributed in the RE<sub>3</sub>NbO<sub>7</sub> ceramics and are in RE<sup>3+</sup>, Nb<sup>5+</sup>, and O<sup>2−</sup> valence states. All the prepared RE<sub>3</sub>NbO<sub>7</sub> ceramics showed considerable cryogenic MC responses, identified by maximum magnetic entropy/temperature-averaged magnetic entropy changes and relative cooling power. Specifically, these MC parameters (Δ<i>H</i> = 0–7 T) comprised 33.76/30.57 J/(kg K) and 362.23 J/kg for Gd<sub>3</sub>NbO<sub>7</sub>, 19.39/18.72 J/(kg K) and 444.39 J/kg for Dy<sub>3</sub>NbO<sub>7</sub>, 18.52/18.20 J/(kg K) and 495.9 J/kg for Ho<sub>3</sub>NbO<sub>7</sub>, and 20.26/19.31 J/(kg K) and 345.45 J/kg for Er<sub>3</sub>NbO<sub>7</sub>, respectively. These values are superior to those of RE<sub>3</sub>RuO<sub>7</sub> ceramics and comparable with those of recently reported RE-dominated MC materials featuring notable MC responses, indicating the promising potential of the RE<sub>3</sub>NbO<sub>7</sub> ceramics for cooling applications.</p>

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Structural and magnetic characterization of weberite-type RE3NbO7 (RE = Gd, Dy, Ho, and Er) ceramics with notable cryogenic magnetocaloric responses

  • Fengying Chen,
  • Jiameng Xu,
  • Xinyu Zhao,
  • Yingzhe Na,
  • Yikun Zhang

摘要

The magnetocaloric (MC) responses of various rare-earth (RE)-dominated magnetic solids have been extensively investigated recently to develop high-performing MC materials for cryogenic cooling applications. Herein, we fabricated a family of single-phase RE-dominated magnetic ceramics, RE3NbO7 (RE = Gd, Dy, Ho, and Er), via solid-state reactions and determined their structural and magnetic properties, specifically their cryogenic MC responses, through experiments and theoretical calculations. The prepared RE3NbO7 ceramics all crystallize in the orthorhombic weberite-type structure (space group C2221, No. 20). The constituent elements are uniformly distributed in the RE3NbO7 ceramics and are in RE3+, Nb5+, and O2− valence states. All the prepared RE3NbO7 ceramics showed considerable cryogenic MC responses, identified by maximum magnetic entropy/temperature-averaged magnetic entropy changes and relative cooling power. Specifically, these MC parameters (ΔH = 0–7 T) comprised 33.76/30.57 J/(kg K) and 362.23 J/kg for Gd3NbO7, 19.39/18.72 J/(kg K) and 444.39 J/kg for Dy3NbO7, 18.52/18.20 J/(kg K) and 495.9 J/kg for Ho3NbO7, and 20.26/19.31 J/(kg K) and 345.45 J/kg for Er3NbO7, respectively. These values are superior to those of RE3RuO7 ceramics and comparable with those of recently reported RE-dominated MC materials featuring notable MC responses, indicating the promising potential of the RE3NbO7 ceramics for cooling applications.