Magnetic doping with transition metal ions is the most widely used approach to break time-reversal symmetry in a topological insulator (TI)—a prerequisite for unlocking the TI’s exotic potential. Recently, we reported the doping of Bi2Te3 thin films with rare-earth ions, which, owing to their large magnetic moments, promise commensurately large magnetic gap openings in the topological surface states. However, only when doping with Dy has a sizable gap been observed in angle-resolved photoemission spectroscopy, which persists up to room temperature. Although disorder alone could be ruled out as a cause of the topological phase transition, a fundamental understanding of the magnetic and electronic properties of Dy-doped Bi2Te3 remained elusiv...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs),...
Breaking time-reversal symmetry through magnetic doping of topological insulators has been identifie...
This publication arises from research funded by the John Fell Oxford University Press (OUP) Research...
Magnetic doping with transition metal ions is the most widely used approach to break time-reversal s...
Magnetic doping with transition metal ions is the most widely used approach to break time-reversal s...
AbstractMagnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum pheno...
Magnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum phenomena, pa...
Magnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum phenomena, pa...
Magnetic topological insulators (MTIs) are a novel materials class in which a topologically nontrivi...
Magnetic topological insulators (MTIs) are a novel materials class in which a topologically nontrivi...
Breaking the time-reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs) is ...
Breaking the time-reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs) is ...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs) ...
AbstractMagnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum pheno...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs),...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs),...
Breaking time-reversal symmetry through magnetic doping of topological insulators has been identifie...
This publication arises from research funded by the John Fell Oxford University Press (OUP) Research...
Magnetic doping with transition metal ions is the most widely used approach to break time-reversal s...
Magnetic doping with transition metal ions is the most widely used approach to break time-reversal s...
AbstractMagnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum pheno...
Magnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum phenomena, pa...
Magnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum phenomena, pa...
Magnetic topological insulators (MTIs) are a novel materials class in which a topologically nontrivi...
Magnetic topological insulators (MTIs) are a novel materials class in which a topologically nontrivi...
Breaking the time-reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs) is ...
Breaking the time-reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs) is ...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs) ...
AbstractMagnetic doping of topological insulators (TIs) is crucial for unlocking novel quantum pheno...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs),...
The breaking of time reversal symmetry (TRS) in three-dimensional (3D) topological insulators (TIs),...
Breaking time-reversal symmetry through magnetic doping of topological insulators has been identifie...
This publication arises from research funded by the John Fell Oxford University Press (OUP) Research...