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Outstanding TC Enhancement in 5d–3d Y2NiIrO6 by Compression

  • Zheng Deng*
  • , Yao Zhang
  • , Sijia Zhang
  • , Jing Song
  • , Wanli He
  • , Yuanzhe Li
  • , Meilin Jin
  • , Xiang Li
  • , Guanghua Liu
  • , Zhen Dong
  • , Jingkai Bi
  • , Wenmin Li
  • , Jianfa Zhao
  • , Jun Zhang
  • , Yi Peng
  • , Luchuan Shi
  • , Junling Meng*
  • , Xiancheng Wang
  • , Changqing Jin*
  • *Corresponding author for this work
  • CAS - Institute of Physics
  • Jilin Normal University
  • Beijing Institute of Technology
  • Henan Province Academy of Medical Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Understanding and predicting the properties of 5d compounds critically depend on the identification of the superexchange interactions from which their magnetism emerges. The study of pressure effects on double perovskite Y2NiIrO6 (YNIO) provides deep insight toward this goal. At ambient pressure, YNIO is a ferrimagnetic insulator with the Ir4+-5d Jeff = 1/2 Mott-insulating state. Under physical pressure up to 17 GPa, the compound exhibits concurrent compression on Ni/Ir─O bond lengths and Ni─O─Ir bond angles, leading to an increase of the Curie temperature from 192 to 243 K. On the contrary, external pressure increases distanced Ir─Ir interaction and in turn induces magnetic frustration in Sr2IrO4/Sr3Ir2O7 due to the extended 5d orbitals. In YNIO, the rock-salt ordered Ni─Ir naturally blocks extended superexchange beyond the nearest neighbor, and in turn suppresses such magnetic frustration. Moreover, the orthogonal Ni eg–Ir t2g pathway in YNIO is robust under lattice distortion, while the superexchange is weakened by bond bending in La2NiMnO6 with a similar half-filed eg–t2g configuration. Our findings establish a framework for elucidating the mechanism of 5d–3d superexchange and guide bond-engineered magnetism in iridate-related systems.

Original languageEnglish
JournalAdvanced Science
DOIs
Publication statusAccepted/In press - 2026
Externally publishedYes

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