Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes
Nanomaterials have enabled significant breakthroughs in energy storage capabilities. In particular, the use of nanoscale components in lithium-sulfur and lithium-oxygen batteries have generated energy densities 2-3x greater than todayâs lithium-ion batteries. However, a major roadblock to commercial...
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ndltd-VANDERBILT-oai-VANDERBILTETD-etd-09052016-0542062016-09-13T05:00:09Z Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes Oakes, Landon Joseph Interdisciplinary Materials Science Nanomaterials have enabled significant breakthroughs in energy storage capabilities. In particular, the use of nanoscale components in lithium-sulfur and lithium-oxygen batteries have generated energy densities 2-3x greater than todayâs lithium-ion batteries. However, a major roadblock to commercially viable applications of nanomaterials is the ability to cost-effectively manufacture electrode-scale films while still maintaining precise control over the nanoscale morphology. In this regard, electrophoretic deposition (EPD) provides a promising tool for large-scale manufacture of nanomaterial systems using conventional liquid processing techniques. During EPD, the use of electrochemical equilibria to stabilize suspensions of nanomaterials eliminates the need for additives and provides a mechanism to control the placement of individual nanostructures on both 2D and 3D substrates through the application of an electric field. The viability of this process for large scale manufacture is demonstrated by integrating EPD electrode fabrication with nanomaterial synthesis processes on a benchtop roll-to-roll platform. Using this approach, lithium-sulfur and lithium-oxygen electrodes are fabricated that demonstrate enhanced mass-specific performance compared with identical material compositions assembled using conventional techniques. For lithium-oxygen batteries, the role that catalyst assembly plays in dictating the performance of the battery is elucidated and improved through EPD. Likewise, for lithium-sulfur batteries, the coating of an elemental sulfur layer is engineered in conjunction with an all-carbon EPD assembled electrode to produce one of highest capacity and most reversible lithium-sulfur cathodes ever reported. Overall, this thesis demonstrates the role of nanomaterial assembly in determining the energy storage performance of electrode-scale films and presents a method to control this assembly that is amenable to large-scale manufacture. Cary Pint Rizia Bardhan Jason Valentine Yaqiong Xu Paul Laibinis VANDERBILT 2016-09-12 text application/pdf http://etd.library.vanderbilt.edu/available/etd-09052016-054206/ http://etd.library.vanderbilt.edu/available/etd-09052016-054206/ en unrestricted I hereby certify that, if appropriate, I have obtained and attached hereto a written permission statement from the owner(s) of each third party copyrighted matter to be included in my thesis, dissertation, or project report, allowing distribution as specified below. I certify that the version I submitted is the same as that approved by my advisory committee. I hereby grant to Vanderbilt University or its agents the non-exclusive license to archive and make accessible, under the conditions specified below, my thesis, dissertation, or project report in whole or in part in all forms of media, now or hereafter known. I retain all other ownership rights to the copyright of the thesis, dissertation or project report. I also retain the right to use in future works (such as articles or books) all or part of this thesis, dissertation, or project report. |
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Interdisciplinary Materials Science Oakes, Landon Joseph Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes |
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Nanomaterials have enabled significant breakthroughs in energy storage capabilities. In particular, the use of nanoscale components in lithium-sulfur and lithium-oxygen batteries have generated energy densities 2-3x greater than todayâs lithium-ion batteries. However, a major roadblock to commercially viable applications of nanomaterials is the ability to cost-effectively manufacture electrode-scale films while still maintaining precise control over the nanoscale morphology. In this regard, electrophoretic deposition (EPD) provides a promising tool for large-scale manufacture of nanomaterial systems using conventional liquid processing techniques. During EPD, the use of electrochemical equilibria to stabilize suspensions of nanomaterials eliminates the need for additives and provides a mechanism to control the placement of individual nanostructures on both 2D and 3D substrates through the application of an electric field. The viability of this process for large scale manufacture is demonstrated by integrating EPD electrode fabrication with nanomaterial synthesis processes on a benchtop roll-to-roll platform. Using this approach, lithium-sulfur and lithium-oxygen electrodes are fabricated that demonstrate enhanced mass-specific performance compared with identical material compositions assembled using conventional techniques. For lithium-oxygen batteries, the role that catalyst assembly plays in dictating the performance of the battery is elucidated and improved through EPD. Likewise, for lithium-sulfur batteries, the coating of an elemental sulfur layer is engineered in conjunction with an all-carbon EPD assembled electrode to produce one of highest capacity and most reversible lithium-sulfur cathodes ever reported. Overall, this thesis demonstrates the role of nanomaterial assembly in determining the energy storage performance of electrode-scale films and presents a method to control this assembly that is amenable to large-scale manufacture. |
author2 |
Cary Pint |
author_facet |
Cary Pint Oakes, Landon Joseph |
author |
Oakes, Landon Joseph |
author_sort |
Oakes, Landon Joseph |
title |
Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes |
title_short |
Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes |
title_full |
Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes |
title_fullStr |
Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes |
title_full_unstemmed |
Controlling Nanomaterial Assembly to Improve Material Performance in Energy Storage Electrodes |
title_sort |
controlling nanomaterial assembly to improve material performance in energy storage electrodes |
publisher |
VANDERBILT |
publishDate |
2016 |
url |
http://etd.library.vanderbilt.edu/available/etd-09052016-054206/ |
work_keys_str_mv |
AT oakeslandonjoseph controllingnanomaterialassemblytoimprovematerialperformanceinenergystorageelectrodes |
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