Strong interlayer coupling in van der Waals heterostructures built from single-layer chalcogenides
arXiv:1403.3754 · doi:10.1073/pnas.1405435111
Abstract
Semiconductor heterostructures are the fundamental platform for many important device applications such as lasers, light-emitting diodes, solar cells and high-electron-mobility transistors. Analogous to traditional heterostructures, layered transition metal dichalcogenide (TMDC) heterostructures can be designed and built by assembling individual single-layers into functional multilayer structures, but in principle with atomically sharp interfaces, no interdiffusion of atoms, digitally controlled layered components and no lattice parameter constraints. Nonetheless, the optoelectronic behavior of this new type of van der Waals (vdW) semiconductor heterostructure is unknown at the single-layer limit. Specifically, it is experimentally unknown whether the optical transitions will be spatially direct or indirect in such hetero-bilayers. Here, we investigate artificial semiconductor heterostructures built from single layer WSe2 and MoS2 building blocks. We observe a large Stokes-like shift of ~100 meV between the photoluminescence peak and the lowest absorption peak that is consistent with a type II band alignment with spatially direct absorption but spatially indirect emission. Notably, the photoluminescence intensity of this spatially indirect transition is strong, suggesting strong interlayer coupling of charge carriers. The coupling at the hetero-interface can be readily tuned by inserting hexagonal BN (h-BN) dielectric layers into the vdW gap. The generic nature of this interlayer coupling consequently provides a new degree of freedom in band engineering and is expected to yield a new family of semiconductor heterostructures having tunable optoelectronic properties with customized composite layers.
http://www.pnas.org/content/early/2014/04/10/1405435111.abstract
References in corpus (11)
- Electric Field Effect in Atomically Thin Carbon Films
- Boron nitride substrates for high-quality graphene electronics
- Valley polarization in MoS2 monolayers by optical pumping
- High Performance Single Layered WSe2 p-FETs with Chemically Doped Contacts
- Vertical Field Effect Transistor based on Graphene-WS2 Heterostructures for flexible and transparent electronics
- Integrated Circuits Based on Bilayer MoS2 Transistors
- Emergence of Superlattice Dirac Points in Graphene on Hexagonal Boron Nitride
- Optical signature of symmetry variations and spin-valley coupling in atomically thin tungsten dichalcogenides
- Cross-sectional imaging of individual layers and buried interfaces of graphene-based heterostructures and superlattices
- Channel Length Scaling of MoS2 MOSFETs
- Strong Coulomb drag and broken symmetry in double-layer graphene
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