Epitaxial growth of large-gap quantum spin Hall insulator on semiconductor surface
arXiv:1411.5314 · doi:10.1073/pnas.1409701111
Abstract
Formation of topological quantum phase on conventional semiconductor surface is of both scientific and technological interest. Here, we demonstrate epitaxial growth of 2D topological insulator, i.e. quantum spin Hall (QSH) state, on Si(111) surface with a large energy gap, based on first-principles calculations. We show that Si(111) surface functionalized with 1/3 monolayer of halogen atoms [Si(111)-sqrt(3) x sqrt(3)-X (X=Cl, Br, I)] exhibiting a trigonal superstructure, provides an ideal template for epitaxial growth of heavy metals, such as Bi, which self-assemble into a hexagonal lattice with high kinetic and thermodynamic stability. Most remarkably, the Bi overlayer is "atomically" bonded to but "electronically" decoupled from the underlying Si substrate, exhibiting isolated QSH state with an energy gap as large as 0.8 eV. This surprising phenomenon is originated from an intriguing substrate orbital filtering effect, which critically select the orbital composition around the Fermi level leading to different topological phases. Particularly, the substrate-orbital-filtering effect converts the otherwise topologically trivial freestanding Bi lattice into a nontrivial phase; while the reverse is true for Au lattice. The underlying physical mechanism is generally applicable, opening a new and exciting avenue for exploration of large-gap topological surface/interface states.
Total 26 pages, 7 figures. Supporting information included. arXiv admin note: substantial text overlap with arXiv:1401.3392
References in corpus (9)
- Quantum Spin Hall Effect and Topological Phase Transition in HgTe Quantum Wells
- Quantum Spin Hall Insulator State in HgTe Quantum Wells
- Quantum Spin Hall Effect and Enhanced Magnetic Response by Spin-Orbit Coupling
- Flat bands and Wigner crystallization in the honeycomb optical lattice
- Half-Heusler Compounds as a New Class of Three-Dimensional Topological Insulators
- Organic Topological Insulators in Organometallic Lattices
- Flat Chern Band in a Two-Dimensional Organometallic Framework
- Chern insulators from heavy atoms on magnetic substrates
- Creation of Helical Dirac Fermions by Interfacing Two Gapped Systems of Ordinary Fermions
Cited by in corpus (15)
- From a normal insulator to a topological insulator in plumbene
- sd2 Graphene: Kagome Band in Hexagonal lattice
- Functionalized Bismuth Films: Giant Gap Quantum Spin Hall and Valley-Polarized Quantum Anomalous Hall States
- Two-Dimensional Group-IV Chalcogenide Si2Te2 film: A New Quantum Spin Hall Insulator with Sizable Band Gap
- Topological Dirac states beyond orbitals for silicene on SiC(0001) surface
- Quantum thermal transport in stanene
- Quantum Spin Hall Effect in IV-VI Topological Crystalline Insulators
- Robust Dual Topological Character with Spin-Valley Polarization in a Monolayer of the Dirac Semimetal NaBi
- Weyl points created by a three-dimensional flat band
- New class of 3D topological insulator in double perovskite
- Strain-tunable topological quantum phase transition in buckled honeycomb lattices
- Two-Dimensional Large Gap Topological Insulators with Large Rashba Spin-Orbit Coupling in Group-IV films
- 2D and 3D topological phases in BiTe compounds
- Prediction of Topological Crystalline Insulator and Topological Phase Transitions in Two-dimensional PbTe Films
- Stain-Induced Band Inversion and Topological Nontriviality in Antimonene