麻豆淫院

November 13, 2024

Unique magnetic properties of 2D triangular lattice materials have potential applications for quantum computing

(a)聽Triangular lattice formed by Mn atoms, with intraplanar exchange interactions (饾惤1 and 饾惤2) and interplanar exchange interactions (饾惤饾憪1 and 饾惤饾憪2). The triangular lattice can be a perfect triangular when 饾懃Mn=1/3, where 饾惤1=饾惤2 and 饾惤饾憪1=饾惤饾憪2. (b)聽Six irreducible representations under 饾憙鈦63鈦潙愨仮饾憵 symmetry, where 螕1 to 螕4 are irreducible one-dimensional representations, while 螕5 and 螕6 are irreducible two-dimensional representations. (c)聽The interactions between planes using examples of 螕5鈦(饾憙鈦63) and 螕6鈦(饾憙鈦6鈥3). Credit: 麻豆淫院ical Review B (2024). DOI: 10.1103/麻豆淫院RevB.110.134444
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(a)聽Triangular lattice formed by Mn atoms, with intraplanar exchange interactions (饾惤1 and 饾惤2) and interplanar exchange interactions (饾惤饾憪1 and 饾惤饾憪2). The triangular lattice can be a perfect triangular when 饾懃Mn=1/3, where 饾惤1=饾惤2 and 饾惤饾憪1=饾惤饾憪2. (b)聽Six irreducible representations under 饾憙鈦63鈦潙愨仮饾憵 symmetry, where 螕1 to 螕4 are irreducible one-dimensional representations, while 螕5 and 螕6 are irreducible two-dimensional representations. (c)聽The interactions between planes using examples of 螕5鈦(饾憙鈦63) and 螕6鈦(饾憙鈦6鈥3). Credit: 麻豆淫院ical Review B (2024). DOI: 10.1103/麻豆淫院RevB.110.134444

Researchers from a large international team, including ANSTO, have investigated the magnetic properties of two unique 2D triangular lattice antiferromagnetic materials (2D-TLHAF) using various neutron scattering techniques.

Multiferroic materials are being explored for use in advanced computers. Their make them suitable for future computing applications, as they can manage and process the significantly larger volume of information more efficiently.

Additionally, the unique properties of 2D magnets, such as flexibility and stackability, which is an ability to control layers of quantum devices or materials to create more efficient systems, have applications in magnetism and spintronics.

The materials, hexagonal h-Lu0.3Y0.7MnO3 and h-Lu0.47Sc0.53FeO3, are a type of frustrated antiferromagnet, which means that the spins of the atoms in the material cannot all align in a way that minimizes their energy due to the triangular arrangement of the lattice.

Lead author, instrument scientist Dr. Shinichiro Yano said the materials exhibit fascinating and complex magnetic behaviors which have been difficult to investigate through conventional neutron scattering techniques.

Their unique and nontrivial quantum effects can be observed and measured from the cold triple axis spectrometer Sikawith鈥攁 setup of polarized neutrons and other neutron instruments at the Australian Center for Neutron Scattering.

The study, in 麻豆淫院ical Review B, reports two irreducible representations to describe their .

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"These mathematical concepts help us understand how the (spins) of the atoms in these materials are arranged and how they interact with each other," state the authors.

Dr. Andrew Manning, Helium-3 Polarisation instrument scientist said, "Polarized scattering has shown that accurately describing the magnetic structures of a 2D-TLHAF requires the use of two irreducible representations, rather than relying on the assumption that the system undergoes spin reorientation when using only one irreducible representation."

Instrument scientist Dr. Chin-Wei Wang said, "If we use two irreducible representations to describe these magnetic structures, the spin reorientations reported in these compounds are not as drastic as previously claimed."

The study also investigated the spin-wave dispersion of both materials based on these magnetic structures. A spin wave is a propagating disturbance in the ordering of a magnetic material.

The study also provides evidence of interplanar interactions in one material, h-Lu0.3Y0.7MnO3, which are absent in the other, h-Lu0.47Sc0.53FeO3.

"Interplanar interactions were thought to be the key to understanding spin reorientations. However, as shown in the paper, interplanar interactions were absent for one of the materials we studied," said Dr. Yano.

These findings also offered fresh insights into the magnetism of spin reorientations and the source of the multiferroicity of this 2D-TLHAF system.

"Even though the two materials are similar in terms of crystal and magnetic structures, the source of multiferroicity and the origin of spin reorientation could be different," said Dr. Yano.

More information: S. Yano et al, Spin reorientation and interplanar interactions of the two-dimensional triangular-lattice Heisenberg antiferromagnets h鈭(Lu,Y)MnO3 and h鈭(Lu,Sc)FeO3, 麻豆淫院ical Review B (2024).

Journal information: 麻豆淫院ical Review B

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