Chemical Vapor Deposition Synthesized Atomically Thin Molybdenum Disulfide with Optoelectronic-Grade Crystalline Quality
arXiv:1504.04888 · doi:10.1021/acsnano.5b02019
Abstract
The ability to synthesize high-quality samples over large areas and at low cost is one of the biggest challenges during the developmental stage of any novel material. While chemical vapor deposition (CVD) methods provide a promising low-cost route for CMOS compatible, large-scale growth of materials, it often falls short of the high-quality demands in nanoelectronics and optoelectronics. We present large-scale CVD synthesis of single- and few- layered MoS2 using direct vapor-phase sulfurization of MoO2, which enables us to obtain extremely high-quality single-crystal monolayer MoS2 samples with field-effect mobility exceeding 30 cm2/Vs in monolayers. These samples can be readily synthesized on a variety of substrates, and demonstrate a high-degree of optoelectronic uniformity in Raman and photoluminescence mapping over entire crystals with areas exceeding hundreds of square micrometers. Owing to their high crystalline quality, Raman spectroscopy on these samples reveal a range of multi-phonon processes through peaks with equal or better clarity compared to past reports on mechanically exfoliated samples. This enables us to investigate the layer thickness- and substrate-dependence of the extremely weak phonon processes at 285 cm-1 and 487 cm-1 in 2D MoS2. The ultra-high, optoelectronic-grade crystalline quality of these samples could be further established through photocurrent spectroscopy, which clearly reveal excitonic states at room temperature, a feat that has been previously demonstrated only on device fabricated with mechanically exfoliated that were artificially suspended across trenches. Our method reflects a big step in the development of atomically thin, 2D MoS2 for scalable, high-quality optoelectronics.
Published in ACS Nano
References in corpus (14)
- Two Dimensional Atomic Crystals
- Universal Dynamic Conductivity and Quantized Visible Opacity of Suspended Graphene
- Anomalous Lattice Vibrations of Single and Few-Layer MoS2
- Valley polarization in MoS2 monolayers by optical pumping
- Synthesis of Large-Area MoS2 Atomic Layers with Chemical Vapor Deposition
- Electrically Tunable Excitonic Light Emitting Diodes based on Monolayer WSe2 p-n Junctions
- Probing Excitonic Dark States in Single-layer Tungsten Disulfide
- Evolution of Interlayer Coupling in Twisted MoS2 Bilayers
- Mechanisms of photoconductivity in atomically thin MoS2
- Transport properties of monolayer MoS grown by chemical vapour deposition
- Probing excitonic states in ultraclean suspended two-dimensional semiconductors by photocurrent spectroscopy
- Helicity resolved Raman scattering of MoS2, MoSe2, WS2 and WSe2 atomic layers
- Newly observed first-order resonant Raman modes in few-layer MoS
- A Comprehensive Multiphonon Spectral Analysis in MoS2
Cited by in corpus (11)
- Capture the growth kinetics of CVD growth of two-dimensional MoS2
- Twistronics: A turning point in 2D quantum materials
- Effect of different precursors on CVD growth of molybdenum disulfide
- Stacking-dependent exciton multiplicity in WSe bilayers
- Oxygen-induced in-situ manipulation of the interlayer coupling and exciton recombination in Bi2Se3/MoS2 2D heterostructures
- Field-induced hybridization of moiré excitons in MoSe/WS heterobilayers
- Imaging Nanoscale Inhomogeneities and Edge Delamination in As-Grown MoS2 Using Tip-Enhanced Photoluminescence
- High Throughput Characterization of Epitaxially Grown Single-Layer MoS2
- Active control of coherent dynamics in hybrid plasmonic MoS2 monolayers with dressed phonons
- Direct and Scalable Chemical Vapor Deposition of Ultrathin Low-Noise MoS2 Membranes on Apertures
- Absorption and emission modulation in MoS2-GaN (0001) heterostructure by interface phonon-exciton coupling