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6 results for “Thermal Filming”
Effect of Substrates and Thermal Treatments on Metalorganic Chemical Vapor Deposition-Grown Sb2Te3 Thin Films (data)
<p>This dataset contains the raw data files connected with the figures included in the paper "<em>Effect of Substrates and Thermal Treatments on Metalorganic Chemical Vapor Deposition-Grown Sb<sub>2</sub>Te<sub>3</sub> Thin Films</em>" by <a href="https://pubs.acs.org/doi/pdf/10.1021/acs.cgd.1c00508">M. Rimoldi et al., <em>Cryst. Growth Des.</em> 2021, 21, 9, 5135–5144</a></p> <p>Note for users: </p> <p>The data in Figure 10 can be retrieved from <a href="https://zenodo.org/record/5725028#.Ybcxb73MI2w">Table 2 in the main text</a>.</p>
Dataset for publication "Deposition of Sn-Zr-Se precursor by thermal evaporation and PLD for the synthesis of SnZrSe3 thin films"
<p>This dataset entails various structural material data that was used to provide additional evidence for arguments presented in publication "Deposition of Sn-Zr-Se precursor by thermal evaporation and PLD for the synthesis of SnZrSe3 thin films". </p><p>Mainly data consists of: SEM, XRD, Raman, Auger and TGA raw data.</p><p>Summary of results is provided in Extended_data.pdf file </p>
Thin film Tin Selenide (SnSe) Thermoelectric Generators Exhibiting Ultra-Low Thermal Conductivity
<p>Raw data from plots in "Thin film Tin Selenide (SnSe) Thermoelectric Generators Exhibiting Ultra-Low Thermal Conductivity"</p>
Thermal spike during simulated deposition of tetrahedral amorphous carbon films
<p>These videos show the thermal spike arising from a 100 eV C atom impinging on a growing tetrahedral amorphous carbon film, as simulated with a GAP potential [1,2,3] following the deposition protocol and methodology outlined by Caro <em>et al</em>. [4,5]. The molecular dynamics simulations (MD) were carried out with QUIP's GAP implementation [6] using LAMMPS [7,8] as MD engine. The atomic visualization was carried out with VMD [9,10]. The final videos were composed using, in addition, the following software: gnuplot [11], Inkscape [12] and FFmpeg [13].</p> <p><strong>References</strong></p> <ol> <li>A.P. Bartók, M.C. Payne, R. Kondor, and G. Csányi. Phys. Rev. Lett. <strong>104</strong>, 136403 (2010).</li> <li>A.P. Bartók, R. Kondor, and G. Csányi. Phys. Rev. B <strong>87</strong>, 184115 (2013).</li> <li>V.L. Deringer and G. Csányi. Phys. Rev. B <strong>95</strong>, 094203 (2017).</li> <li>M.A. Caro, V.L. Deringer, J. Koskinen, T. Laurila, and G Csányi. Phys. Rev. Lett. <strong>120</strong>, 166101 (2018).</li> <li>M.A. Caro, G Csányi, T. Laurila, and V.L. Deringer. Phys. Rev. B <strong>102</strong>, 174201 (2020).</li> <li>http://libatoms.github.io</li> <li>https://lammps.sandia.gov</li> <li>S. Plimpton. J. Comp. Phys., <strong>117</strong>, 1 (1995).</li> <li>https://www.ks.uiuc.edu/Research/vmd</li> <li>W. Humphrey, A. Dalke, and K. Schulten. J. Molec. Graphics <strong>14</strong>, 33 (1996).</li> <li>http://www.gnuplot.info</li> <li>https://inkscape.org</li> <li>https://ffmpeg.org</li> </ol>
Dataset for "Role of electron-phonon coupling and thermal expansion on band gaps, carrier mobility, and interfacial offsets in kesterite thin-film solar cells"
<p>Dataset for "Role of electron-phonon coupling and thermal expansion on band gaps, carrier mobility, and interfacial offsets in kesterite thin-film solar cells"</p>
Advanced Materials - Epitaxial Growth of Large-Scale 2D CrTe2 Films on Amorphous Silicon Wafers With Low Thermal Budget
<p>2D van der Waals (vdW) magnets open landmark horizons in the development of innovative spintronic device architectures. However, their fabrication with large scale poses challenges due to high synthesis temperatures (>500 °C) and difficulties in integrating them with standard complementary metal-oxide semiconductor (CMOS) technology on amorphous substrates such as silicon oxide (SiO<sub>2</sub>) and silicon nitride (SiN<em><sub>x</sub></em>). Here, a seeded growth technique for crystallizing CrTe<sub>2</sub> films on amorphous SiN<em><sub>x</sub></em>/Si and SiO<sub>2</sub>/Si substrates with a low thermal budget is presented. This fabrication process optimizes large-scale, granular atomic layers on amorphous substrates, yielding a substantial coercivity of 11.5 kilo-oersted, attributed to weak intergranular exchange coupling. Field-driven Néel-type stripe domain dynamics explain the amplified coercivity. Moreover, the granular CrTe<sub>2</sub> devices on Si wafers display significantly enhanced magnetoresistance, more than doubling that of single-crystalline counterparts. Current-assisted magnetization switching, enabled by a substantial spin–orbit torque with a large spin Hall angle (85) and spin Hall conductivity (1.02 ×  10<sup>7</sup> ℏ/2e  Ω⁻¹  m⁻¹), is also demonstrated. These observations underscore the proficiency in manipulating crystallinity within integrated 2D magnetic films on Si wafers, paving the way for large-scale batch manufacturing of practical magnetoelectronic and spintronic devices, heralding a new era of technological innovation.</p>
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OpenNeuro
OpenNeuro is a free, open platform for sharing neuroimaging datasets, with public search, dataset pages, and download paths for web, S3, DataLad, and the OpenNeuro CLI.