Synthesis and structural characterization of MoS2 micropyramids

被引:0
作者
J. Enrique Samaniego-Benitez
Rubén Mendoza-Cruz
Lourdes Bazán-Díaz
Alejandra Garcia-Garcia
M. Josefina Arellano-Jimenez
J. Francisco Perez-Robles
German Plascencia-Villa
J. Jesus Velázquez-Salazar
Eduardo Ortega
Sarai E. Favela-Camacho
Miguel José-Yacamán
机构
[1] CICATA Unidad Legaria,Catedras Conacyt, Instituto Politécnico Nacional
[2] Universidad Nacional Autónoma de México,Instituto de Investigaciones en Materiales
[3] Centro de Investigación en Materiales Avanzados Unidad Monterrey,Laboratory of Synthesis and Modification of Nanostructures and Bidimensional Materials
[4] The University of Texas at Dallas,Deparment of Materials Science and Engineering
[5] Centro de Investigación y de Estudios Avanzados del I.P.N. Unidad Querétaro,Department of Physics & Astronomy
[6] The University of Texas at San Antonio,Department of Applied Physics and Materials Science, Center for Materials Interfaces Research and Applications (MIRA)
[7] INM- Leibniz Institute for New Materials,undefined
[8] Universidad Tecnológica de Manzanillo,undefined
[9] Northern Arizona University,undefined
来源
Journal of Materials Science | 2020年 / 55卷
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摘要
Two-dimensional (2D) materials based on molybdenum sulfide (MoS2) have shown promising applications in semiconductors, optoelectronics, and catalysis. The variety of applications implies a controlled manipulation of purity, shape, and phase of such materials. This work elaborates on the structural characterization of MoS2 micro-assemblies produced in a chemical vapor deposition (CVD) system with emphasis on the pyramidal structures formed at high temperature and low gas rate, on a silicon dioxide (SiO2) substrate. A precise control of temperature and gas rate in the CVD process prompts the growth of pyramidal and other micron-size arrangements of MoS2 layers. An integrative set of high-resolution and analytical electron microscopy techniques, in conjunction with Raman and X-ray photoelectron spectroscopy (XPS), revealed the structural features of the MoS2 microstructures. Raman and XPS confirmed the presence of MoS2 and some residual oxide phases. Ultra-high-resolution scanning electron microscopy provided direct observation of the distinctive stacking of layers forming the pyramidal microstructures. Cross section samples from selected structures were done using focused ion beam. An extent of transmission electron microscopy and Cs-corrected scanning transmission electron microscopy (Cs-corrected STEM) results is discussed. This approach allowed to understand the growth mechanism of the triangular MoS2 microstructures through spiral grow around a screw dislocation, initiated at the center of the assembly.
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页码:12203 / 12213
页数:10
相关论文
共 178 条
[1]  
Wang QH(2012)Electronics and optoelectronics of two-dimensional transition metal dichalcogenides Nat Nanotechnol 7 699-712
[2]  
Kalantar-Zadeh K(2014)Generalized one-pot synthesis of copper sulfide, selenide-sulfide, and telluride-sulfide nanoparticles Chem Mater 26 1442-1449
[3]  
Kis A(2018)Two-dimensional transition metal oxide and chalcogenide-based photocatalysts Nano-Micro Lett 10 1-27
[4]  
Saldanha PL(2007)Chalcogenides as organocatalysts Chem Rev 107 5841-5883
[5]  
Brescia R(2015)Enhanced hydrogen evolution reaction on few-layer MoS Int J Hydrog Energy 40 8877-8888
[6]  
Prato M(2005) nanosheets-coated functionalized carbon nanotubes J Am Chem Soc 127 5308-5309
[7]  
Haque F(2015)Biomimetic hydrogen evolution: MoS Nanoscale 7 18152-18168
[8]  
Daeneke T(2014) nanoparticles as catalyst for hydrogen evolution ACS Nano 8 4074-4099
[9]  
Kalantar-zadeh K(2010)2D nanosheet molybdenum disulphide (MoS Angew Chem Int Ed 49 4059-4062
[10]  
Ou JZ(2010)) modified electrodes explored towards the hydrogen evolution reaction Phys Rev Lett 105 2-5