303 research outputs found

    Exotic criticality in the dimerized spin-1 XXZXXZ chain with single-ion anisotropy

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    We consider the dimerized spin-1 XXZXXZ chain with single-ion anisotropy DD. In absence of an explicit dimerization there are three phases: a large-DD, an antiferromagnetically ordered and a Haldane phase. This phase structure persists up to a critical dimerization, above which the Haldane phase disappears. We show that for weak dimerization the phases are separated by Gaussian and Ising quantum phase transitions. One of the Ising transitions terminates in a critical point in the universality class of the dilute Ising model. We comment on the relevance of our results to experiments on quasi-one-dimensional anisotropic spin-1 quantum magnets.Comment: Received the Select label. 20 pages, 7 figures, final versio

    Determining the Optical Geometry of a Gold Semi-Shell under the Kretschmann Configuration

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    Dielectric nanoparticles coated with metals (half-shell or semi-shell structures) have attracted attention as potential composite plasmonic nanomaterials with large optical anisotropy and absorption cross-sections. Structures approximately 100 nm in size can excite plasmons in the visible and near-infrared ranges, highlighting their distinct optical properties. This study employed metal semi-shell structures (metal: gold, dielectric: silica) in the Kretschmann configuration to experimentally and numerically demonstrate the optical determination of single-structure orientations through a finite-difference time-domain method. Gold semi-shell structures were fabricated through deposition and etching. These structures were removed from their substrate in ultrapure water and randomly dropped onto a thin gold substrate. In the single structure, we experimentally observed changes in the scattering light spectrum based on the optical geometry of the gold semi-shell at wavelengths ranging from 530 to 700 nm. The obtained results closely resembled those of a simulation and confirmed the presence of eigenmodes in the orientation through electric field analysis. These observations allow for the cost-effective and rapid determination of the orientations of numerous structures that are approximately 100 nm in size, solely through optical methods. This technique is a valuable development for measurement applications in nanostructure orientation control and functionality enhancement

    Boundary Scattering in Ballistic Graphene

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    We report magnetotransport measurements in ballistic graphene/hexagonal boron nitride mesoscopic wires where the charge carrier mean free path is comparable to wire width WW. Magnetoresistance curves show characteristic peak structures where the peak field scales with the ratio of cyclotron radius RcR_\textrm{c} and wire width WW as W/Rc=0.9±0.1W/R_\textrm{c} = 0.9 \pm 0.1, due to diffusive boundary scattering. The obtained proportionality constant between RcR_\textrm{c} and WW differs from that of a classical semiconductor 2D electron system where W/Rc=0.55W/R_\textrm{c} = 0.55.Comment: 14 pages, 4 figure

    Pressure-Induced Restoration of the Reversed Crystal-Field Splitting in α\alpha-Sr2_2CrO4_4

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    Motivated by an experimental finding that the successive phase transitions in α\alpha-Sr2_2CrO4_4 observed at ambient pressure ceases to exist under high pressures, we carry out the density-functional-theory-based electronic structure calculations and demonstrate that the reversal of the crystal-field splitting reported previously is restored under high pressures, so that the orbital degrees of freedom disappears, resulting in the single phase transition that divides the system into high-temperature Mott insulating and low-temperature antiferromagnetic insulating phases.Comment: 5 pages, 1 figure, to appear in JPS Conf. Proc. (Proceedings for SCES2019
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