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Matthew B. Stone

Researcher at Oak Ridge National Laboratory

Publications -  318
Citations -  10237

Matthew B. Stone is an academic researcher from Oak Ridge National Laboratory. The author has contributed to research in topics: Inelastic neutron scattering & Neutron scattering. The author has an hindex of 41, co-authored 289 publications receiving 8275 citations. Previous affiliations of Matthew B. Stone include University of Michigan & Pennsylvania State University.

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Synthesis of Fe Oxide Core/Au Shell Nanoparticles by Iterative Hydroxylamine Seeding

TL;DR: In this article, water-soluble, Au-coated magnetic Fe oxide nanoparticles with diameters ∼60 nm were synthesized by the reduction of Au3+ onto the surfaces of ∼9 nm diameter particles consisting of either γ-Fe2O3 or partially oxidized Fe3O4 via iterative hydroxylamine seeding.
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Proximate Kitaev Quantum Spin Liquid Behaviour in {\alpha}-RuCl$_3$

TL;DR: In this paper, the authors provide experimental evidence that a material based on ruthenium, δ-RuCl$_3$ realizes the same Kitaev physics but is highly amenable to neutron investigation, and show that stacking faults, inherent to the highly 2D nature of the material, readily explain some puzzling results.
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Neutron scattering in the proximate quantum spin liquid α-RuCl 3 .

TL;DR: In this article, the authors used neutron scattering on single crystals of α-RuCl3 to reconstruct dynamical correlations in energy-momentum space and discovered highly unusual signals, including a column of scattering over a large energy interval around the Brillouin zone center.
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Neutron tomography of magnetic Majorana fermions in a proximate quantum spin liquid

TL;DR: A comprehensive inelastic neutron scattering study of single crystals of the material α-RuCl3, which has been predicted to a host a Kitaev spin liquid, finds highly unusual signals, including a column of scattering over a large energy interval around the Brillouin zone center, which is consistent with scattering from the Majorana excitations of a KQSL.