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Paper Journal of Materials Chemistry A Fig. 5 (a) Digital photographs of AC@S and AC/S-155 soaked in electrolyte. (b) Comparison of the cycled AC@S and AC/S-155 cathodes soaked in DOL/DME solvent. (c) Digital photographs of the cycled separators of AC@S and AC/S-155 cells. In order to gain deep insight into the chemical composition and microstructure evolution of the AC@S electrode, SEM, TEM, XPS and BET tests of the cycled AC@S electrodes were further carried out. The morphology of the fresh AC@S elec- trodeisillustratedinFig.6aandb.ItwasfoundthatAC@Sand Super-P particles were uniformly dispersed on the surface of the View Article Online Fig. 6 (a, b, e and f) SEM images of the fresh and cycled AC@S electrodes. (c) TEM image of the cycled AC@S electrode. The inset is the HRTEM image of the cycled AC@S electrode. (d, g and h) STEM image and EDS mappings of the cycled AC@S electrode. (i and j) High-resolution S 2p and C 1s spectra of the cycled AC@S electrode. The cycled electrodes were charged in the delithiated state after 100 cycles. This journal is © The Royal Society of Chemistry 2017 J. Mater. Chem. A Published on 24 November 2017. Downloaded by University of Texas Libraries on 08/12/2017 20:16:36.PDF Image | Supercritical CO2 Mediated Incorporation of Sulfur into Carbon Matrix
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Sulfur Deposition on Carbon Nanofibers using Supercritical CO2 Sulfur Deposition on Carbon Nanofibers using Supercritical CO2. Gamma sulfur also known as mother of pearl sulfur and nacreous sulfur... More Info
CO2 Organic Rankine Cycle Experimenter Platform The supercritical CO2 phase change system is both a heat pump and organic rankine cycle which can be used for those purposes and as a supercritical extractor for advanced subcritical and supercritical extraction technology. Uses include producing nanoparticles, precious metal CO2 extraction, lithium battery recycling, and other applications... More Info
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