The search for new large band gap quantum spin Hall (QSH) and quantum anomalous Hall (QAH) insulators is critical for their realistic applications at room temperature. Here we predict, based on first-principles calculations, that the band gap of QSH and QAH states can be as large as 1.01 and 0.35 eV in an H-decorated Bi(111) film. The origin of this giant band gap lies in both the large spin-orbit interaction of Bi and the H-mediated exceptional electronic and structural properties. Moreover, we find that the QAH state also possesses the properties of a quantum valley Hall state, thus intrinsically realizing the so-called valley-polarized QAH effect. We further investigate the possibility of large gap QSH and QAH states in an H-decorated Bi...
Combining magnetism and nontrivial band topology gives rise to quantum anomalous Hall (QAH) insulato...
Quantum spin Hall (QSH) effect is promising for achieving dissipationless transport devices but pres...
Electronic band-gap is a key factor in applying two-dimensional (2D) topological insulators into roo...
The search for new large band gap quantum spin Hall (QSH) and quantum anomalous Hall (QAH) insulator...
Berrys phase, an inherent constituent of the electronic wave functions, has revolutionarily enriched...
We theoretically investigate the electronic properties of the interface between quantum spin Hall (Q...
Discovery of two-dimensional topological insulator such as Bi bilayer initiates challenges in explor...
Topological insulators (TIs) exhibit novel physics with great promise for new devices, but considera...
A quantum-spin-Hall (QSH) state was achieved experimentally, albeit at a low critical temperature be...
The search for large-gap quantum spin Hall (QSH) insulators and effective approaches to tune QSH sta...
Exploring a two-dimensional intrinsic quantum spin Hall state with a large band gap as well as an an...
The discovery of the quantum Hall (QH) effect led to the realization of a topological electronic sta...
One of the major obstacles to a wide application range of the quantum spin Hall (QSH) effect is the ...
Combining magnetism and nontrivial band topology gives rise to quantum anomalous Hall (QAH) insulato...
We report a theoretical prediction of a new class of bulk and intrinsic quantum anomalous Hall (QAH)...
Combining magnetism and nontrivial band topology gives rise to quantum anomalous Hall (QAH) insulato...
Quantum spin Hall (QSH) effect is promising for achieving dissipationless transport devices but pres...
Electronic band-gap is a key factor in applying two-dimensional (2D) topological insulators into roo...
The search for new large band gap quantum spin Hall (QSH) and quantum anomalous Hall (QAH) insulator...
Berrys phase, an inherent constituent of the electronic wave functions, has revolutionarily enriched...
We theoretically investigate the electronic properties of the interface between quantum spin Hall (Q...
Discovery of two-dimensional topological insulator such as Bi bilayer initiates challenges in explor...
Topological insulators (TIs) exhibit novel physics with great promise for new devices, but considera...
A quantum-spin-Hall (QSH) state was achieved experimentally, albeit at a low critical temperature be...
The search for large-gap quantum spin Hall (QSH) insulators and effective approaches to tune QSH sta...
Exploring a two-dimensional intrinsic quantum spin Hall state with a large band gap as well as an an...
The discovery of the quantum Hall (QH) effect led to the realization of a topological electronic sta...
One of the major obstacles to a wide application range of the quantum spin Hall (QSH) effect is the ...
Combining magnetism and nontrivial band topology gives rise to quantum anomalous Hall (QAH) insulato...
We report a theoretical prediction of a new class of bulk and intrinsic quantum anomalous Hall (QAH)...
Combining magnetism and nontrivial band topology gives rise to quantum anomalous Hall (QAH) insulato...
Quantum spin Hall (QSH) effect is promising for achieving dissipationless transport devices but pres...
Electronic band-gap is a key factor in applying two-dimensional (2D) topological insulators into roo...