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41 results for “thermoelectrics”
Data from: Advancing the Ca14AlSb11 structure type: Synthesis and characterization of Yb14CdSb11 for thermoelectric applications
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Data from: β-Phase Yb5Sb3Hx: Magnetic and thermoelectric properties traversing from an electride to a semiconductor
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STEG data of manuscript "Electrical Generation of a Ground Level Solar Thermoelectric Generator: Experimental Tests and One-year Cycle Simulation" submitted to Energies
<p>Figure_7_data: laboratory data of TEG output power working at low temperature differences. Data used in Figure 7 of manuscript "Electrical Generation of a Ground Level Solar Thermoelectric Generator: Experimental Tests and One-year Cycle Simulation" submitted to Energies.</p> <p>Figure_9_data: experimental data of TEG temperature differences from July 24 to July 31, 2017. Data used in Figure 9 of manuscript "Electrical Generation of a Ground Level Solar Thermoelectric Generator: Experimental Tests and One-year Cycle Simulation" submitted to Energies.</p> <p>Figures_11_14_data: input and output data of the STEG model. One-year cycle data. Used to obtain figures 11 to 14 of manuscript "Electrical Generation of a Ground Level Solar Thermoelectric Generator: Experimental Tests and One-year Cycle Simulation" submitted to Energies</p>
A validated physical model of the thermoelectric drift of Pt-Rh thermocouples above 1200 °C
<p>Data associated with a validated physical model of the thermoelectric drift of Pt-Rh thermocouples above 1200 °C (Metrologia 57 (2020) 025009) https://doi.org/10.1088/1681-7575/ab71b3</p>
Advancing Carriers Mobility in MnSb2Te4 Thermoelectrics via Tailored Textures and Vacancy Modification
<p>The full data sets for the manuscript "Advancing Carriers Mobility in MnSb2Te4 Thermoelectrics via Tailored Textures and Vacancy Modification" by Xu, et al.</p> <p>DOI: <a href="https://doi.org/10.1002/aenm.202500838">10.1002/aenm.202500838</a></p>
Earth Abundant, Non-Toxic, 3D Printed Cu2-xS with High Thermoelectric Figure of Merit
<p>Dataset for: Earth Abundant, Non-Toxic, 3D Printed Cu<sub>2-x</sub>S with High Thermoelectric Figure of Merit</p> <p>The toxicity, earth abundance and manufacturing costs of thermoelectric materials are three leading reasons why thermoelectric generators are not used in wide scale applications. This is the first ever paper to tackle all three of these problems at once. A pseudo-3D printing technique is combined with Cu<sub>2-x</sub>S based inks to yield bulk samples capable of being using in traditional architecture thermoelectric generators. These bulk samples are characterized over a wide temperature range in XPS, which reveals a curing temperature of 550 K yields pure Cu<sub>2-x</sub>S samples. The thermoelectric properties of these samples are tested over a wide temperature range, with a peak ZT of 0.63 ± 0.09 being recorded at 966 K.</p>
Performance Advancements in P-Type TaFeSb-Based Thermoelectric Materials through Composition and Composite Optimizations
<p>The full data sets for the manuscript "Performance Advancements in P-Type TaFeSb-Based Thermoelectric Materials through Composition and Composite Optimizations" by Naderloo, et al.</p> <p>The paper is published in Energy & Environmental Science: <a title="Link to landing page via DOI" href="https://doi.org/10.1039/D4EE04819A">https://doi.org/10.1039/D4EE04819A</a></p>
EIA Thermoelectric cooling water data
<p>EIA data on water cooling thermoelectric generators in the US.</p> <p>Source: https://www.eia.gov/electricity/data/water/</p>
Thermoelectric sample Cu2MnGeS4 - M282 - Enargite phase
<p><strong><em>M282-Enargite</em></strong></p> <p>The following submission contains the data collection and processing of datasets for the sample M282, with composition Cu2MnGeS4 – Epidote phase, in the framework of the publication: Pavan Kumar, V., Passuti, S., Zhang, B., Fujii, S., Yoshizawa, K., Boullay, P., ... & Guilmeau, E. (2022). Engineering Transport Properties in Interconnected Enargite‐Stannite Type Cu2+ xMn1− xGeS4 Nanocomposites. <em>Angewandte Chemie International Edition</em>, <em>61</em>(49), e202210600.</p> <p>A single crystal was identified, and precession data acquisition techniques were used to collect datasets on the same crystal. The data sets were processed with PETS2 software. The table below summarizes the data collection parameters for the data sets. The following data is also included as a text file in the data folder.</p> <p><strong>Precession:</strong></p> <table> <tbody> <tr> <td> <p><strong>General information:</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Project</p> </td> <td> <p>NanED (www.naned.eu)</p> </td> </tr> <tr> <td> <p>ESR Project</p> </td> <td> <p>ESR12</p> </td> </tr> <tr> <td> <p>Project Label</p> </td> <td> <p>Cu2+xMn1-xGeS4</p> </td> </tr> <tr> <td> <p>Sample Label</p> </td> <td> <p>Cu2MnGeS4</p> </td> </tr> <tr> <td> <p>Data set Label</p> </td> <td> <p>Cu2MnGeS4-Enargite-PEDT</p> </td> </tr> <tr> <td> <p> </p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p><strong>Instrumental:</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Instrument</p> </td> <td> <p>Transmission electron microscope Jeol F200</p> </td> </tr> <tr> <td> <p>Radiation source</p> </td> <td> <p>Cold FEG</p> </td> </tr> <tr> <td> <p>Accelerating voltage</p> </td> <td> <p>200 kV</p> </td> </tr> <tr> <td> <p>Wavelength</p> </td> <td> <p>0.0251 Å</p> </td> </tr> <tr> <td> <p>Probe Type</p> </td> <td> <p>Microdiffraction</p> </td> </tr> <tr> <td> <p>Beam Diameter</p> </td> <td> <p>70nm</p> </td> </tr> <tr> <td> <p>Beam Convergence</p> </td> <td> <p>Parallel beam, convergence <0.1mrad</p> </td> </tr> <tr> <td> <p>Detector</p> </td> <td> <p>Hybrid pixel detector ASI Cheetah M3 (bottom mounted)</p> </td> </tr> <tr> <td> <p>Number of pixels in the image</p> </td> <td> <p>512 x 512</p> </td> </tr> <tr> <td> <p>Pixel size</p> </td> <td> <p>55 µm x 55 µm</p> </td> </tr> <tr> <td> <p>Effective camera length</p> </td> <td> <p>250 mm</p> </td> </tr> <tr> <td> <p>Calibration constant</p> </td> <td> <p>0.00574 Å<sup>-1</sup>/pixel</p> </td> </tr> <tr> <td> <p> </p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p><strong>Sample description:</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Name</p> </td> <td> <p>Enargite</p> </td> </tr> <tr> <td> <p>Chemical composition</p> </td> <td> <p>Cu<sub>2</sub>MnGeS<sub>4</sub></p> </td> </tr> <tr> <td> <p> </p> </td> </tr> <tr> <td> <p>Sample preparation</p> </td> <td> <p>Powder crushed on a mortar and dispersed in n-butanol, drop deposited on a Cu grid with holey C film</p> </td> </tr> <tr> <td> <p><strong>Experimental:</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Data Type</p> </td> <td> <p>Electron diffraction data - 3D ED</p> </td> </tr> <tr> <td> <p>Data collection method</p> </td> <td> <p>PEDT</p> </td> </tr> <tr> <td> <p>Temperature (K) used during data collection</p> </td> <td> <p>293 K</p> </td> </tr> <tr> <td> <p>Number of crystals contributing to the data set</p> </td> <td> <p>1</p> </td> </tr> <tr> <td> <p>Number of experimental frames</p> </td> <td> <p>88</p> </td> </tr> <tr> <td> <p>tilt range, tilt step, tilt per frame</p> </td> <td> <p>-39.1° to +48.5°, 1°, 0°</p> </td> </tr> <tr> <td> <p>Precession angle</p> </td> <td> <p>1.2°</p> </td> </tr> <tr> <td> <p>Exposure time per frame</p> </td> <td> <p>500ms</p> </td> </tr> <tr> <td> <p> </p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p><strong>Software:</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Software used for the data collection</p> </td> <td> <p>Instamatic software</p> </td> </tr> <tr> <td> <p>Software used for processing</p> </td> <td> <p>PETS2 (ver 2.1.20211012.1037)</p> </td> </tr> <tr> <td> <p> </p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p><strong>Authorship and bibliography</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Author(s) of the data</p> </td> <td> <p>Sara Passuti (ESR12)</p> </td> </tr> <tr> <td> <p>Related data</p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Publication(s)</p> </td> <td> <p>Engineering Transport Properties in Interconnected Enargite-Stannite Type Cu2+xMn1-xGeS4 Nanocomposites</p> <p>DOI 10.1002/anie.202210600</p> </td> </tr> <tr> <td> <p> </p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p><strong>Files and data formats</strong></p> </td> <td> <p> </p> </td> </tr> <tr> <td> <p>Image folder</p> </td> <td> <p>raw-data\tiff: Folder containing images of the diffraction pattern from each frames.</p> </td> </tr> <tr> <td> <p>Image format</p> </td> <td> <p>tiff_16bit</p> </td> </tr> <tr> <td> <p>Additional folders/files</p> </td> <td> <p>M282-Enargite.tif : image of the crystal</p> </td> </tr> <tr> <td> <p> </p> </td> <td> <p>M282-Enargite.pts2 :input file for the program PETS2 used for processing the data</p> </td> </tr> </tbody> </table> <p> </p> <table> <tbody> <tr> <td> <p><strong>Notes:</strong></p> <p> </p> <p> </p> </td> </tr> </tbody> </table>
Data for Thermoelectric conversion of deep-sea hydrothermal chimneys
<p>This is the data set for the paper 'Thermoelectric conversion of deep-sea hydrothermal chimneys'</p>
Thermoelectric performances for both p- and n- type GeSe
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Data from: The thermoelectric properties of Au nanoparticle-incorporated Al-doped mesoporous ZnO thin films
Mesoporous Al-doped ZnO thin films incorporated with gold nanoparticles (Au NPs) were synthesized using a sol-gel and evaporation-induced self-assembly process. In this work, the complementary effects of Au NP incorporation and Al doping on the mesoporous ZnO thin films' thermoelectric properties were analyzed. The incorporated Au NPs induced an increase in electrical conductivity but a detriment in the pore arrangement of the mesoporous ZnO thin film, which was accompanied by a decrease in porosity. However, the addition of the Al dopant minimized the pore structural collapse because of the inhibition of the grain growth in the ZnO skeletal structure, resulting in an enhancement of the pore arrangement and porosity. When the Au NPs and Al dopant were added at the same time, the degradation in the pore structure was minimized and the electrical conductivity was effectively increased but the absolute value of the Seebeck coefficient was decreased. However, as a result, the thermoelectric power factor was increased by 2.4 times compared to the pristine mesoporous ZnO thin film. It was found that co-introducing the Au NPs and Al doping to the mesoporous ZnO structure was effective in preserving the pore structure and increasing the electric conductivity, thereby enhancing the thermoelectric property of the mesoporous ZnO thin film.
Design Principles Guided by DFT Calculations and High-Throughput Frameworks for the Discovery of New Diamond-like Chalcogenide Thermoelectric Materials
<p>Dataset of ShengBTE calculations for In2CuAgSe4 system considered in the article.</p>
Raw data and Matlab code for the article "Impedance spectroscopy analysis of thermoelectric modules under actual energy harvesting operating conditions and a small temperature difference"
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Electronic transport computation in thermoelectric materials: from ab initio scattering rates to nanostructures
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Permanent-magnet-based transverse thermoelectric generator with high fill factor driven by anomalous Nernst effect
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Data from: Enhancement of thermoelectric properties of La-doped SrTiO3 bulk by introducing nanoscale porosity
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Data from: The thermoelectric properties of Au nanoparticle-incorporated Al-doped mesoporous ZnO thin films
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Data from: Prediction for electronic, vibrational and thermoelectric properties of chalcopyrite AgX(X=In,Ga)Te2: PBE + U approach
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Data from: Pressure-induced enhancement in the thermoelectric properties of monolayer and bilayer SnSe2
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