Photovoltaic effect in few-layer black phosphorus PN junctions defined by local electrostatic gating
arXiv:1407.2863 · doi:10.1038/ncomms5651
Abstract
The photovoltaic effect is one of the fundamental light-matter interactions in light energy harvesting. In conventional photovoltaic solar cells, the photogenerated charge carriers are extracted by the built-in electric field of a PN junction, typically defined by ionic dopants in a semiconductor. In atomically thin semiconductors, the doping level can be controlled by the field-effect without need of implanting dopants in the lattice, which makes 2D semiconductors prospective materials to implement electrically tunable PN junctions. However, most 2D semiconducting materials do not show ambipolar P-type and N-type field-effect transport, necessary to realize PN junctions. Few-layer black phosphorus is a recently isolated 2D semiconductor that presents a direct bandgap, high mobility, current on/off ratio and ambipolar operation. Here, we fabricate few-layer black phosphorus (b-P) field-effect transistors with split bottom gates and crystalline hexagonal boron nitride (h-BN) dielectric. We demonstrate electrostatic control of the local charge carrier type and density above each gate in the device, tuning its electrical behaviour from metallic to rectifying. Illuminating a gate-defined PN junction, we observe zero-bias photocurrents and significant open-circuit voltage, which we attribute to the separation of electron-hole pairs driven by the internal electric field at the junction region. Due to the small bandgap of the material, we observe photocurrents and photovoltages for illumination wavelengths up to 940 nm, attractive for energy harvesting applications in the near-infrared region
includes main text (5 figures) and supporting information (9 figures)
References in corpus (7)
- Electric Field Effect in Atomically Thin Carbon Films
- Two Dimensional Atomic Crystals
- Boron nitride substrates for high-quality graphene electronics
- Fast and broadband photoresponse of few-layer black phosphorus field-effect transistors
- Elastic properties of freely suspended MoS2 nanosheets
- Photovoltaic effect in few-layer black phosphorus PN junctions defined by local electrostatic gating
- Large and tunable photo-thermoelectric effect in single-layer MoS2
Cited by in corpus (34)
- Semiconducting Black Phosphorus: Synthesis, Transport Properties and Electronic Applications
- The Renaissance of Black Phosphorus
- Broadband Linear-Dichroic Photodetector in a Black Phosphorus Vertical p-n Junction
- Photocurrent generation with two-dimensional van der Waals semiconductors
- Waveguide-integrated black phosphorus photodetector with high responsivity and low dark current
- Environmental instability of few-layer black phosphorus
- Arsenene: Two-dimensional buckled and puckered honeycomb arsenic systems
- Photovoltaic effect in few-layer black phosphorus PN junctions defined by local electrostatic gating
- High quality sandwiched black phosphorus heterostructure and its quantum oscillations
- The Electronic Properties of Phosphorene/Graphene and Phosphorene/Hexagonal Boron Nitride Heterostructures
- Tuning of the electronic and optical properties of single layer black phosphorus by strain
- In Situ Thermal Decomposition of Exfoliated Two-Dimensional Black Phosphorus
- Post Graphene 2D Chemistry: The Emerging Field of Molybdenum Disulfide and Black Phosphorus Functionalization
- Observation of Low-frequency Interlayer Breathing Modes in Few-layer Black Phosphorus
- Dynamical Evolution of Anisotropic Response in Black Phosphorus under Ultrafast Photoexcitation
- Thermoelectric power of bulk black-phosphorus
- Low-Symmetry Two-Dimensional Materials for Electronic and Photonic Applications
- The Role of H2O and O2 Molecules and Phosphorus Vacancies in the Structure Instability of Phosphorene
- Franckeite: a naturally occurring van der Waals heterostructure
- The Optical Properties and Plasmonics of Anisotropic 2-Dimensional Materials
- Field Effect Optoelectronic Modulation of Quantum-Confined Carriers in Black Phosphorus
- A Perspective on Recent Advances in Phosphorene Functionalization and its Application in Devices
- Anisotropic buckling of few-layer black phosphorus
- Mechanical Properties of Phosphorene Nanotubes: A Density Functional Tight-Binding Study
- Aharonov-Bohm effect in monolayer black phosphorus (phosphorene) nanorings
- Gate induced monolayer behavior in twisted bilayer black phosphorus
- Charge carrier transport and lifetimes in n-type and p-type phosphorene as 2D device active materials: an ab initio study
- Magnetoplasmons in monolayer black phosphorus structures
- Lattice Opening Upon Bulk Reductive Covalent Functionalization of Black Phosphorus
- CrAs monolayer: Low buckled two-dimensional half-metal ferromagnet
- Monolayer Phosphorene-Metal Interfaces
- Phosphorene: Fabrication, Properties and Applications
- Mid-Infrared Ultrafast Carrier Dynamics in Thin Film Black Phosphorus
- Controlling quantum spin Hall state via strain in various stacking bilayer phosphorene