Matching Items (154)
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Description
This dissertation will investigate two of the most promising high-capacity anode

materials for lithium-based batteries: silicon (Si) and metal lithium (Li). It will focus on

studying the mechanical behaviors of the two materials during charge and discharge and

understanding how these mechanical behaviors may affect their electrochemical

performance.

In

This dissertation will investigate two of the most promising high-capacity anode

materials for lithium-based batteries: silicon (Si) and metal lithium (Li). It will focus on

studying the mechanical behaviors of the two materials during charge and discharge and

understanding how these mechanical behaviors may affect their electrochemical

performance.

In the first part, amorphous Si anode will be studied. Despite many existing studies

on silicon (Si) anodes for lithium ion batteries (LIBs), many essential questions still exist

on compound formation, composition, and properties. Here it is shown that some

previously accepted findings do not truthfully reflect the actual lithiation mechanisms in

realistic battery configurations. Furthermore the correlation between structure and

mechanical properties in these materials has not been properly established. Here, a rigorous

and thorough study is performed to comprehensively understand the electrochemical

reaction mechanisms of amorphous-Si (a-Si) in a realistic LIB configuration. In-depth

microstructural characterization was performed and correlations were established between

Li-Si composition, volumetric expansion, and modulus/hardness. It is found that the

lithiation process of a-Si in a real battery setup is a single-phase reaction rather than the

accepted two-phase reaction obtained from in-situ TEM experiments. The findings in this

dissertation establish a reference to quantitatively explain many key metrics for lithiated a

Si as anodes in real LIBs, and can be used to rationally design a-Si based high-performance

LIBs guided by high-fidelity modeling and simulations.

In the second part, Li metal anode will be investigated. Problems related to dendrite

growth on lithium metal anodes such as capacity loss and short circuit present major

barriers to the next-generation high-energy-density batteries. The development of

successful mitigation strategies is impeded by the incomplete understanding of the Li

dendrite growth mechanisms. Here the enabling role of plating residual stress in dendrite

initiation through novel experiments of Li electrodeposition on soft substrates is confirmed,

and the observations is explained with a stress-driven dendrite growth model. Dendrite

growth is mitigated on such soft substrates through surface-wrinkling-induced stress

relaxation in deposited Li film. It is demonstrated that this new dendrite mitigation

mechanism can be utilized synergistically with other existing approaches in the form of

three-dimensional (3D) soft scaffolds for Li plating, which achieves superior coulombic

efficiency over conventional hard copper current collectors under large current density.
ContributorsWang, Xu (Author) / Jiang, Hanqing (Thesis advisor) / Yu, Hongbin (Thesis advisor) / Chan, Candace (Committee member) / Wang, Liping (Committee member) / Qiong, Nian (Committee member) / Arizona State University (Publisher)
Created2018
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Description
Advancements in thermal interface materials (TIMs) allows for the creation of new and more powerful electronics as they increase the heat transfer from the component to the heat sink. Current industrial options provide decent heat transfer, but the creation of TIMs with higher thermal conductivities is needed. In addition, if

Advancements in thermal interface materials (TIMs) allows for the creation of new and more powerful electronics as they increase the heat transfer from the component to the heat sink. Current industrial options provide decent heat transfer, but the creation of TIMs with higher thermal conductivities is needed. In addition, if these TIMs are elastic in nature, their effectiveness can greatly increase as they can deal with changing interfaces without degradation of their properties. The research performed delves into this idea, creating elastic TIMs using liquid metal (LM), in this case galinstan, along with other matrix particles embedded in Polydimethylsiloxane (PDMS) to create an easy to use, relatively inexpensive, thermally conductive, but electrically insulative, pad with increased thermal conductivity from industrial solutions.

The pads were created using varying amounts of LM and matrix materials ranging from copper microspheres to diamond powder mixed into PDMS using a high-speed mixer. The material was then cast into molds and cured to create the pads. Once the pads were created, the difficulty came in quantifying their thermal properties. A stepped bar apparatus (SBA) following ASTM D5470 was created to measure the thermal resistance of the pads but it was determined that thermal conductivity was a more usable metric of the pads’ performance. This meant that the pad’s in-situ thickness was needed during testing, prompting the installation of a linear encoder to measure the thickness. The design and analysis of the necessary modification and proposed future design is further detailed in the following paper.
ContributorsKemme, Nicholas (Author) / Rykaczewski, Konrad (Thesis advisor) / Wang, Robert (Thesis advisor) / Wang, Liping (Committee member) / Arizona State University (Publisher)
Created2017
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Description
Learning how to manage time efficiently is something that many people struggle with, college students in particular. The purpose of this study was to examine if personalization via self-experimentation of strategies to improve time management skills is a useful strategy for achieving this goal. This study used a multiple baseline

Learning how to manage time efficiently is something that many people struggle with, college students in particular. The purpose of this study was to examine if personalization via self-experimentation of strategies to improve time management skills is a useful strategy for achieving this goal. This study used a multiple baseline approach with three phases: phase one, the baseline, phase two, which included individuals receiving examples of plausible strategies to improve time management skills, and phase three, which involved the self-experimentation component. Results of this study suggest no significant changes in time management based on self-reported completion of tasks but do indicate a trend towards improved time management skills overall based on the time management questionnaire taken at the beginning and end of the study. These results suggest that further exploration in the use of self-experimentation strategies for improving time management is likely warranted but that current strategies likely require additional research. Results from the interviews indicate that the self-experimentation strategy, as delivered via PACO does increase awareness and thinking about time management.
ContributorsCope, Breanna (Author) / Hekler, Eric (Thesis director) / Buman, Matthew (Committee member) / School of Life Sciences (Contributor) / Barrett, The Honors College (Contributor)
Created2016-05
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Description
As science has progressed, sleep deficiency has been discovered to be associated with declines in both mental and physical health, and similarly, sleep deficiency has been noted as a public safety concern with 20 percent of motor vehicle crashes linked to driving while drowsy. The National Sleep Foundation has identified

As science has progressed, sleep deficiency has been discovered to be associated with declines in both mental and physical health, and similarly, sleep deficiency has been noted as a public safety concern with 20 percent of motor vehicle crashes linked to driving while drowsy. The National Sleep Foundation has identified that 62 percent of Americans do nothing to address their sleep deficiency, and with a society that normalizes coping mechanisms such as napping and caffeine consumption, it is easy to see why nothing has been done to resolve this issue. Nevertheless, with sleep technology falling in the hands of more and more Americans this thesis aims to explore how these technologies are being adopted and how the introduction of sleep-oriented features for established products may lead to more sleep conscious consumers.
ContributorsSmith, Keaton (Author) / Burgman, Roland (Thesis director) / Buman, Matthew (Committee member) / Department of Management and Entrepreneurship (Contributor) / Barrett, The Honors College (Contributor)
Created2020-12