Hexagonal network of photocurrent enhancement in few-layer graphene/InGaN quantum dot junctions
arXiv:2203.12988 · doi:10.1021/acs.nanolett.2c01766
Abstract
Strain in two-dimensional (2D) materials has attracted particular attention owing to the remarkable modification of electronic and optical properties. However, emergent electromechanical phenomena and hidden mechanisms, such as strain-superlattice-induced topological states or flexoelectricity under strain gradient, remain under debate. Here, using scanning photocurrent microscopy, we observe significant photocurrent enhancement in hybrid vertical junction devices made of strained few-layer graphene and InGaN quantum dots. Optoelectronic response and photoluminescence measurements demonstrate a possible mechanism closely tied to the flexoelectric effect in few-layer graphene, where the strain can induce a lateral built-in electric field and assist the separation of electron-hole pairs. Photocurrent mapping reveals an unprecedentedly ordered hexagonal network, suggesting the potential to create a superlattice by strain engineering. Our work provides insights into optoelectronic phenomena in the presence of strain and paves the way for practical applications associated with strained 2D materials.
References in corpus (6)
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Large and tunable photo-thermoelectric effect in single-layer MoS2
- Photoconductivity of biased graphene
- Spontaneous Strains and Gap in Graphene on Boron Nitride
- Unraveling intrinsic flexoelectricity in twisted double bilayer graphene
- Inter-layer charge transport controlled by exciton-trion coherent coupling