English

Magnetosynthesis effect on the structure and ground state of Cu$^{2+}$-based antiferromagnets

Strongly Correlated Electrons 2026-04-02 v1 Materials Science

Abstract

Subtle synthetic variables can have an outsizes influence on the crystal structure and magnetic properties of a material, particularly those of quantum materials. In this work, we investigate the impact of synthesis under a magnetic field (magnetosynthesis) on the crystal structure and magnetic properties of several Cu2+^{2+} (S=1/2S=1/2) based materials with antiferromagnetic interactions and varying levels of magnetic frustration, from simple antiferromagnets to a quantum spin liquid. We employ small (0.09 - 0.37 T) magnetic fields applied during low-temperature hydrothermal or evaporative synthesis of the simple antiferromagnet CuCl2_2\cdot2H2_2O, the canted antiferromagnet (Cu,Zn)3_3Cl4_4(OH)2_2\cdot2H2_2O, the frustrated and canted antiferromagnet atacamite Cu2_2(OH)3_3Cl, and the highly frustrated quantum spin liquid herbertsmithite Cu3_3Zn(OH)6_6Cl2_2. We found that (Cu,Zn)3_3Cl4_4(OH)2_2\cdot2H2_2O experiences structural changes well above its magnetic transition. Atacamite Cu2_2(OH)3_3Cl synthesized under a 0.19 T field experiences a 0.15 K (~3%) decrease in its N\'eel transition temperature and a significant strengthening of its antiferromagnetic interactions, suggesting that magnetosynthesis can influence the ground state of moderately frustrated materials.

Keywords

Cite

@article{arxiv.2512.00253,
  title  = {Magnetosynthesis effect on the structure and ground state of Cu$^{2+}$-based antiferromagnets},
  author = {Micaela E. Primer and Anna A. Berseneva and Ayesha Ulde and Wenhao Sun and Rebecca W. Smaha},
  journal= {arXiv preprint arXiv:2512.00253},
  year   = {2026}
}

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