A Two-dimensional Dirac fermion microscope
arXiv:1704.06952 · doi:10.1038/ncomms15783
Abstract
The electron microscope has been a powerful, highly versatile workhorse in the fields of material and surface science, micro and nanotechnology, biology and geology, for nearly 80 years. The advent of two-dimensional materials opens new possibilities for realising an analogy to electron microscopy in the solid state. Here we provide a perspective view on how a two-dimensional (2D) Dirac fermion-based microscope can be realistically implemented and operated, using graphene as a vacuum chamber for ballistic electrons. We use semiclassical simulations to propose concrete architectures and design rules of 2D electron guns, deflectors, tunable lenses and various detectors. The simulations show how simple objects can be imaged with well-controlled and collimated in-plane beams consisting of relativistic charge carriers. Finally, we discuss the potential of such microscopes for investigating edges, terminations and defects, as well as interfaces, including external nanoscale structures such as adsorbed molecules, nanoparticles or quantum dots.
34 pages; 14 pages; 6 figures; Supplementary information
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Cited by in corpus (33)
- Optical Excitations with Electron Beams: Challenges and Opportunities
- Klein tunneling and electron optics in Dirac-Weyl fermion systems with tilted energy dispersion
- Graphene Transistor Based on Tunable Dirac-Fermion-Optics
- Imaging Dirac fermions flow through a circular Veselago lens
- Chaos in Dirac electron optics: Emergence of a relativistic quantum chimera
- Diffraction catastrophes and semiclassical quantum mechanics for Veselago lensing in graphene
- Angular-dependent Klein tunneling in photonic graphene
- Full-scale Simulation of Electron Transport in Nanoporous Graphene: Probing the Talbot Effect
- Anomalous caustics and Veselago focusing in 8-Pmmn borophene p-n junctions with arbitrary junction directions
- Electronic optics in graphene in the semiclassical approximation
- Aharonov-Bohm oscillations and magnetic focusing in ballistic graphene rings
- Partial positive refraction in asymmetric Veselago lenses of uniaxially strained graphene
- Electrostatics of metal-graphene interfaces: sharp p-n junctions for electron-optical applications
- Large-scale tight-binding simulations of quantum transport in ballistic graphene
- Gradient-index electron optics in graphene pn junctions
- Electron collimation at van der Waals domain walls in bilayer graphene
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- Precision Measurement of Trident Production in Strong Electromagnetic Fields
- Graphene whisperitronics: transducing whispering gallery modes into electronic transport
- Specular electron focusing between gate-defined quantum point contacts in bilayer graphene
- Veselago focusing of anisotropic massless Dirac fermions
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- Chaos based Berry phase detector
- Metasurface electron optics in graphene
- Manipulating electron waves in graphene using carbon nanotube gating
- 2D Rutherford-Like Scattering in Ballistic Nanodevices
- Valley separation via trigonal warping
- Klein tunneling degradation and enhanced Fabry-Pérot interference in graphene/h-BN moiré-superlattice devices
- Electronic analogue of Fourier optics with mass-less Dirac fermions scattered by quantum dot lattice
- Spin-dependent edge states in two-dimensional Dirac materials with a flat band
- Two-dimensional Dirac matter in the semiclassical regime