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arXiv · 2310.02965

Structure transition and zigzag magnetic order in Ir/Rh-substituted honeycomb lattice RuCl3

Abstract

We report magnetization and neutron diffraction studies on crystal and magnetic structures of Ir- and Rh-substituted honeycomb lattice $α$-RuCl$_3$. The iridium or rhodium atoms are distributed at the Ru site with little structural modification. Both systems undergo a room-temperature monoclinic $C2/m$ to low-temperature trigonal $R\bar{3}$ phase transformation with a large recoverable hysteresis. At low temperature, a zigzag spin order is observed with the same characteristic wavevector $(0,0.5,1)$ as in the parent $α$-RuCl$_3$. Detailed magnetic structure refinement reveals an ordered moment of $\rm 0.32(5) μ_B/Ru$ and a upper boundary of canting angle of $15(4)^\circ$ away from the basal plane at 5~K for the 10\% Ir-substituted $α$-RuCl$_3$, which is different from the 0.45-0.73~$\rm μ_B/Ru$ and $32^\circ$-$48^\circ$ canting angle reported in the parent compound $α$-RuCl$_3$. The observation of unchanged RuCl$_6$ local octahedral environment, reduced magnetic moment size and canting angle highlights the potential to study quantum spin liquid behavior through non-magnetic ion doping.

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Zachary Morgan, Iris Ye, Colin L. Sarkis, Xiaoping Wang, Stephen Nagler, Jiaqiang Yan. 2023-10-04. Structure transition and zigzag magnetic order in Ir/Rh-substituted honeycomb lattice RuCl3. https://arxiv.org/abs/2310.02965

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