Published on 01 January 2024

Neutron diffraction in a novel a triangular lattice antiferromagnet MnSnB2O6

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Dr Panchanana Khuntia;Dr Devashi Adroja;Dr James Lord;Dr Pascal Manuel

Description

The subtle interplay between competing degrees of freedom and frustration induced quantum fluctuations can lead to novel states in quantum materials. Quantum spin liquid (QSL) is a highly entangled state of matter that lacks magnetic order, despite strong interactions between magnetic moments and offer an ideal platform to host exotic fractional excitations. Unfortunately, anti-site disorder and defects place major constraints on the realization of ideal QSLs in real materials. Triangular lattice antiferromagnet (TLAFM) offers the simplest archetype for realizing QSL state in frustrated magnets. Here, we focus on a novel TLAFM MnSnB2O6, wherein Mn2+ ions constitute a perfect two-dimensional lattice. Our thermodynamic results don’t show any signature of magnetic ordering or spin-freezing down to 1.9 K. Our recent zero field μSR experiment at ISIS (RB 2220694) reveals a signature of magnetic ordering below 1.2 K, which need further investigation We propose to carry out neutron powder diffraction measurements on the WISH instrument at sub-kelvin temperatures with aim to verify the magnetic order. The proposed measurements should enable us to unveil the exact magnetic structure and any short-range spin correlations developing in this material at low temperatures via diffuse neutron scattering.

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Metrics

Dataset Index

1.6

FAIR Score

73%

Citations

0

Mentions

0

Metrics Over Time

Publication Details

DOI

Publisher

ISIS Facility

Assigned Domain

Subfield

Condensed Matter Physics

Field

Physics and Astronomy

Domain

Physical Sciences

Confidence Score

51%

Source

Scholar Data Model

Keywords

STFC ISIS Neutron and Muon Data

Normalization Factors

FT

15.38

CTw

1.00

MTw

1.00