Excitonic signatures of ferroelectric order in parallel-stacked MoS
arXiv:2409.07234 · doi:10.1038/s41467-024-52011-3
Abstract
Interfacial ferroelectricity, prevalent in various parallel-stacked layered materials, allows switching of out-of-plane ferroelectric order by in-plane sliding of adjacent layers. Its resilience against doping potentially enables next-generation storage and logic devices. However, studies have been limited to indirect sensing or visualization of ferroelectricity. For transition metal dichalcogenides, there is little knowledge about the influence of ferroelectric order on their intrinsic valley and excitonic properties. Here, we report direct probing of ferroelectricity in few-layer 3R-MoS using reflectance contrast spectroscopy. Contrary to a simple electrostatic perception, layer-hybridized excitons with out-of-plane electric dipole moment remain decoupled from ferroelectric ordering, while intralayer excitons with in-plane dipole orientation are sensitive to it. Ab initio calculations identify stacking-specific interlayer hybridization leading to this asymmetric response. Exploiting this sensitivity, we demonstrate optical readout and control of multi-state polarization with hysteretic switching in a field-effect device. Time-resolved Kerr ellipticity reveals a direct correspondence between spin-valley dynamics and stacking order.
References in corpus (9)
- Electrical Control of Optical Properties of Monolayer MoS
- Thickness dependence of work function, ionization energy, and electron affinity of Mo and W dichalcogenides from DFT and GW calculations
- Valley-spin polarized Landau levels in a monolayer semiconductor
- Micro-reflectance and transmittance spectroscopy: a versatile and powerful tool to characterize 2D materials
- Visualizing moiré ferroelectricity via plasmons and nano-photocurrent in graphene/twisted-WSe2 structures
- Mixed-Stacking Few-Layer Graphene as an Elemental Weak Ferroelectric Material
- Polarization Saturation in Multi-layered Interfacial Ferroelectrics
- Optically probing the asymmetric interlayer coupling in rhombohedral-stacked MoS2 bilayer
- Spontaneous Electric Polarization in Graphene Polytypes