Considerations for utilizing sodium chloride in epitaxial molybdenum disulfide
Autor: | Jordan O. Lerach, Shruti Subramanian, Brian M. Bersch, Kehao Zhang, Mauricio Terrones, Joshua A. Robinson, Mikhail Chubarov, Fu Zhang, K. Wang, Joan M. Redwing, Ke Xu, Natalie Briggs, Susan K. Fullerton-Shirey |
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Rok vydání: | 2018 |
Předmět: |
Condensed Matter - Materials Science
Photoluminescence Materials science Materials Science (cond-mat.mtrl-sci) FOS: Physical sciences 02 engineering and technology 010402 general chemistry 021001 nanoscience & nanotechnology Alkali metal Epitaxy 01 natural sciences 0104 chemical sciences chemistry.chemical_compound chemistry Chemical engineering Monolayer Sapphire General Materials Science Crystallite Metalorganic vapour phase epitaxy 0210 nano-technology Molybdenum disulfide |
DOI: | 10.48550/arxiv.1805.12264 |
Popis: | The utilization of alkali salts, such as NaCl and KI, have enabled the successful growth of large single domain and fully coalesced polycrystalline two-dimensional (2D) transition metal dichalcogenide layers. However, the impact of alkali salts on photonic and electronic properties are not fully established. In this work, we report alkali-free epitaxy of MoS2 on sapphire and benchmark the properties against alkali-assisted growth of MoS2. This study demonstrates that although NaCl can dramatically increase the domain size of monolayer MoS2 by 20 times, it can also induce strong optical and electronic heterogeneities in as-grown large-scale films. This work elucidates that utilization of NaCl can lead to variation in growth rates, loss of epitaxy, and a high density of nanoscale MoS2 particles (4/{\mu}m2). Such phenomena suggest that alkali atoms play an important role in Mo and S adatom mobility and strongly influence the 2D/sapphire interface during growth. Compared to alkali-free synthesis under the same growth conditions, MoS2 growth assisted by NaCl results in >1% tensile strain in as-grown domains, which reduces photoluminescence by ~20x and degrades transistor performance. Comment: 12 pages, 4 figures |
Databáze: | OpenAIRE |
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