No abstract is provided for this article.
Convergent beam electron diffraction (CBED) performed on two-dimensional (2D) materials recently emerged as a powerful tool to study structural and stacking defects, adsorbates, atomic 3D displacements in the layers, and the interlayer distances. The formation of the interference patterns in individual CBED spots of 2D crystals can be considered as a hologram, thus the CBED patterns can be directly reconstructed by conventional reconstruction methods adapted from holography. In this study, we review recent results applying CBED to 2D crystals and their heterostructures: holographic CBED on bilayers with the reconstruction of defects and the determination of interlayer distance, CBED on 2D crystal monolayers to reveal adsorbates, and CBED on multilayered van der Waals systems with moiré patterns for local structural determination.
Abstract Mid-infrared (mid-IR) photodetectors play a crucial role in various applications, including the development of biomimetic vision systems that emulate neuronal function. In this work, we demonstrate a new infrared photodetector based on graphene/boron nitride/graphene tunneling heterostructure combining perception and memory functions. The detection principle is based on the shift of the N -shaped tunneling resonant feature in the I - V –curve upon infrared illumination. In the current-biased mode, such a shift results in a strong voltage “jump” (0.05−1 V) to another branch of the I - V –characteristic that persists after switching the radiation off. As a result, the structure can be considered as a visual neuron that combines perception and memory functions. More interestingly, the direction of voltage switching depends on laser beam position, adding extra recognition functionality to our perception device. The observed phenomena are explained within the theory of selective light-induced heating of electrons in the graphene layers, and the tunneling of hot carriers.
No abstract is provided for this article.
No abstract is provided for this article.
Human progress and development has always been marked by breakthroughs in the control of materials. Since pre-historic times, through the stone, bronze, and iron ages, humans have exploited their environment for materials that can be either used directly or can be modified for their benefit, to make their life more comfortable, productive, or to give them military advantage. One age replaces another when the material that is the basis for its sustainability runs its course and is replaced by another material which presents more qualities. Multi-tasking, speed, versatility, and flexibility are at the heart of modern technology. In recent years a new class of materials that can fulfill these needs have emerged: two-dimensional (2D) crystals. Graphene is probably the most famous example, but there are numerous other examples with amazing electronic and structural properties. In this paper we look into the possible routes for exploration of this new field that presents new venues in basic science as well as in applications.