Tuning cryogenic Jahn-Teller transition temperatures in magnetoelectric rare earth vanadates
Kejian Qu, Daniel P. Shoemaker

TL;DR
This study demonstrates how substituting different rare-earth ions in DyVO4 can systematically tune and suppress its low-temperature Jahn-Teller transition, revealing insights into the structural and magnetoelectric properties of these materials.
Contribution
The paper introduces a method to control Jahn-Teller transition temperatures in rare-earth vanadates through chemical substitution, supported by experimental and mean-field modeling insights.
Findings
Substituting Tm or Pr depresses the JT transition temperature.
Higher substitution levels suppress the JT transition entirely.
Structural changes are detectable via X-ray diffraction and correlate with transition suppression.
Abstract
Few materials undergo cooperative Jahn-Teller (JT) transitions at low temperatures, but zircon-type oxides are one class that includes DyVO, which transforms from a tetragonal to an orthorhombic structure at around 13.6 K, with a narrow transition temperature range within 0.5 K. Since many rare-earth ions can be accommodated in the structure, there should be ample routes to vary the transition temperature and structural effects of the transition. We have synthesized pure DyVO and solid solutions DyTmVO ( = 0.05, 0.1, 0.15, 0.2, and 0.5) and DyPrVO ( = 0.03, 0.05, 0.1, 0.2, and 0.5), all by solution precipitation. X-ray diffraction shows a systematic peak shift and a linear change of lattice parameters with increasing substitution. We demonstrate through heat capacity measurements that both Tm and Pr substitutions cause a…
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Taxonomy
TopicsMultiferroics and related materials · Magnetic and transport properties of perovskites and related materials · Advanced Condensed Matter Physics
