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Scanning tunneling microscopy (STM) observation reveals that a cyclic thiazyl diradical, BDTDA (= 4,4'-bis(1,2,3,5-dithiadiazolyl)), forms a well-ordered monolayer honeycomb lattice consisting of paramagnetic corners with unpaired electrons on a clean Cu(111) surface. This BDTDA lattice is commensurate with the triangular lattice of Cu(111), with the former being 3 × 3 larger than the latter. The formation of the BDTDA monolayer structure, which is significantly different from its bulk form, is attributed to an interaction with the metal surface as well as the intermolecular assembling forces. STM spectroscopy measurements on the BDTDA molecules indicate the presence of a characteristic zero-bias anomaly centered at the Fermi energy. The origin of this zero-bias anomaly is discussed in terms of the Dirac cones inherent to the honeycomb structure.
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http://dx.doi.org/10.1038/srep18359 | DOI Listing |
Entropy (Basel)
July 2025
Department of Physics, South China University of Technology, Guangzhou 510640, China.
The Ising model is famous in condensed matter and statistical physics. In this work we present a free-fermion formulation of the two-dimensional classical Ising models on honeycomb, triangular and Kagomé lattices. Each Ising model is studied in the cases of a zero field and of an imaginary field i(π/2)kBT.
View Article and Find Full Text PDFPhys Rev Lett
August 2025
University of California, Department of Physics and Astronomy, Irvine, California 92697, USA.
The inelastic neutron scattering results and their analysis unequivocally point to a dominant Kitaev interaction in the honeycomb-lattice cobaltate BaCo_{2}(AsO_{4})_{2}. Our anisotropic-exchange model closely describes all available neutron scattering data in the material's field-polarized phase. The density-matrix renormalization group results for our model are in close accord with the unusual double-zigzag magnetic order and the low in-plane saturation field of BaCo_{2}(AsO_{4})_{2}.
View Article and Find Full Text PDFAdv Sci (Weinh)
August 2025
Wuhan National High Magnetic Field Center and School of Physics, Huazhong University of Science and Technology, Wuhan, 430074, China.
Unlike conventional magnetic states, which lack degeneracy, the spiral spin liquid (SSL) fluctuates among degenerate spiral configurations, with ground-state wave vectors forming a continuous contour or surface in reciprocal space. At low temperatures, the field-induced crossover from the polarized ferromagnetic state to the SSL results in a large entropy increase and decalescence, indicating its potential for magnetic cooling. However, magnetic cooling using a SSL has yet to be reported.
View Article and Find Full Text PDFNanoscale
August 2025
Department of Physics, The Hong Kong University of Science and Technology, Hong Kong SAR, China.
Two-dimensional metal-organic frameworks (2D MOFs) have emerged as promising platforms for exploring novel quantum phenomena and tunable electronic functionalities. Here, we investigate π-d orbital hybridization in monolayer M(HAT) (M = Ni, Co, Fe; HAT = 1,4,5,8,9,12-hexaazatriphenylene) frameworks by combining density functional theory (DFT) calculations and scanning tunneling microscopy/spectroscopy (STM/STS) characterization. Despite identical lattice geometries, the Ni-HAT framework exhibits a dispersive, gapless band structure, while the Co- and Fe-HAT frameworks display localized electronic states and semiconducting bandgaps.
View Article and Find Full Text PDFJ Phys Chem Lett
August 2025
Department of Chemistry, University of Puerto Rico, Rio Piedras Campus, San Juan, Puerto Rico 00931, United States.
Inspired by the rich physics of honeycomb-kagome (HK) lattices and flat-band magnetism, we predict a stable two-dimensional (2D) penta-AgN monolayer through comprehensive tight-binding (TB) model analysis and first-principles calculations. This novel material integrates pentagonal AgN building blocks into an effective HK superstructure, exhibiting a unique planar hexagonal geometry with hypercoordinated Ag atoms. We demonstrate that penta-AgN is intrinsically a bipolar magnetic semiconductor (BMS) and, more notably, a magnetic real Chern insulator (MRCI) protected by symmetry, featuring spin-polarized flat bands near the Fermi level, intrinsic in-plane ferromagnetic ordering, and observable corner states.
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