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The design of two dimensional graphene-type materials with an anisotropic electron flow direction in the X- and Y-axes opens the door for the development of novel electronic materials with multiple functions in nanoelectronics. In the present work, we have studied the electronic transport properties of a new family of 2D graphene-graphyne hybrids presenting conformationally free phenylethylene subunits. This system ensures two different conductive pathways that are perpendicular to each other: an acene nanoribbon subunit, in the X-axis, with graphene-type conduction, and a free to rotate phenylethylene subunit, in the Y-axis, in which the magnitude of the conduction depends dynamically on the corresponding torsion angle. Our calculations have confirmed that this system presents two different conduction pathways, which are related to the presence of asymmetric Dirac-type cones. Moreover, the Dirac cones can be dynamically modified in the presence of an external gate electrode, which is unprecedented in the literature.
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http://dx.doi.org/10.1039/c5cp04631a | DOI Listing |
J Phys Condens Matter
September 2025
Unidad Académica de Ciencia y Tecnología de la Luz y la Materia, Universidad Autónoma de Zacatecas, Circuito Marie Curie S/N, Parque Científico y Tecnológico QUANTUM Ciudad del Conocimiento, Zacatecas, Zacatecas, 98160, MEXICO.
8-Pmmn borophene is a very attractive 2D material from both the fundamental and technological standpoints. Its tilted band structure gives rise to exotic phenomena such as the oblique Klein tunneling and its gated junction directional dependence represents an additional degree of freedom that can be used to modulate the spin-valley electronic transport. Spin and valley polarization are possible in ferromagnetic 8-Pmmn borophene junctions by having precise control of the transverse wave vector as well as by appropriately tuning the electrostatic and magnetic gating.
View Article and Find Full Text PDFOpt Express
February 2025
We report our theoretical investigation into both the twist angle-dependent and the electric field-controlled second harmonic generation (SHG) effect in twisted bilayer graphene (tBLG) based on the four-band continuum model and independent-particle approximation. This analytical theory provides a quantitative explanation for the twist angle-dependent SHG effect observed in noncentrosymmetric tBLG, as reported in [Matter3, 1361 (2020)10.1016/j.
View Article and Find Full Text PDFSci Rep
August 2025
Advanced Interdisciplinary Research Center for Optics, Nanjing University of Science and Technology, Nanjing, 210094, China.
The ultra-low-loss epsilon-and-mu-near-zero (EMNZ) waveguide based on photonic crystals (PCs) supports uniform field distributions at a single frequency, corresponding to a specific configuration of PCs' structural and material parameters. However, its applications are limited by the high sensitivity of anisotropic EMNZ, as accidental semi-Dirac points are prone to degeneration even with minor variations in any of the PCs' parameters. Here, we report highly robust anisotropic zero refraction effects in two types of two-dimensional symmetry-reduced PCs: square-lattice elliptical air holes and rectangular-lattice circular air holes.
View Article and Find Full Text PDFPhys Chem Chem Phys
August 2025
High Pressure & Synchrotron Radiation Physics Division, Bhabha Atomic Research Centre, Trombay, Mumbai 400085, India.
We present a detailed theoretical study of PtSnS, a layered kagome-type material obtained by replacing Co with Pt in CoSnS, a system extensively studied in (2020, , 3985) and (2022, , 100072), though the Pt-analog remains largely unexplored. Thermodynamic stability was confirmed formation energy calculations, while mechanical stability was evaluated using the Voigt-Reuss-Hill (VRH) approximation and elastic stability conditions. Dynamical and thermal stability were validated through phonon dispersion and molecular dynamics simulations, with Pugh's criterion classifying the material as ductile.
View Article and Find Full Text PDFJ Phys Condens Matter
July 2025
Department of Physics, University of Vermont, Burlington, VT 05405, United States of America.
We propose a lattice model for the realization of exotic quartic semi-Dirac fermions, i.e. quasiparticles exhibiting a dispersion with quartic momentum dependence in a given direction, and a linear dependence in the perpendicular direction.
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