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Dive into the research topics where Matthew M. Huie is active.

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Featured researches published by Matthew M. Huie.


ACS Applied Materials & Interfaces | 2016

Toward Uniformly Dispersed Battery Electrode Composite Materials: Characteristics and Performance

Yo Han Kwon; Matthew M. Huie; Dalsu Choi; Mincheol Chang; Amy C. Marschilok; Kenneth J. Takeuchi; Esther S. Takeuchi; Elsa Reichmanis

Battery electrodes are complex mesoscale systems comprised of electroactive components, conductive additives, and binders. In this report, methods for processing electrodes with dispersion of the components are described. To investigate the degree of material dispersion, a spin-coating technique was adopted to provide a thin, uniform layer that enabled observation of the morphology. Distinct differences in the distribution profile of the electrode components arising from individual materials physical affinities were readily identified. Hansen solubility parameter (HSP) analysis revealed pertinent surface interactions associated with materials dispersivity. Further studies demonstrated that HSPs can provide an effective strategy to identify surface modification approaches for improved dispersions of battery electrode materials. Specifically, introduction of surfactantlike functionality such as oleic acid (OA) capping and P3HT-conjugated polymer wrapping on the surface of nanomaterials significantly enhanced material dispersity over the composite electrode. The approach to the surface treatment on the basis of HSP study can facilitate design of composite electrodes with uniformly dispersed morphology and may contribute to enhancing their electrical and electrochemical behaviors. The conductivity of the composites and their electrochemical performance was also characterized. The study illustrates the importance of considering electronic conductivity, electron transfer, and ion transport in the design of environments incorporating active nanomaterials.


ACS Applied Materials & Interfaces | 2015

Ionic Liquid Hybrid Electrolytes for Lithium-Ion Batteries: A Key Role of the Separator–Electrolyte Interface in Battery Electrochemistry

Matthew M. Huie; Roberta A. DiLeo; Amy C. Marschilok; Kenneth J. Takeuchi; Esther S. Takeuchi

Batteries are multicomponent systems where the theoretical voltage and stoichiometric electron transfer are defined by the electrochemically active anode and cathode materials. While the electrolyte may not be considered in stoichiometric electron-transfer calculations, it can be a critical factor determining the deliverable energy content of a battery, depending also on the use conditions. The development of ionic liquid (IL)-based electrolytes has been a research area of recent reports by other researchers, due, in part, to opportunities for an expanded high-voltage operating window and improved safety through the reduction of flammable solvent content. The study reported here encompasses a systematic investigation of the physical properties of IL-based hybrid electrolytes including quantitative characterization of the electrolyte-separator interface via contact-angle measurements. An inverse trend in the conductivity and wetting properties was observed for a series of IL-based electrolyte candidates. Test-cell measurements were undertaken to evaluate the electrolyte performance in the presence of functioning anode and cathode materials, where several promising IL-based hybrid electrolytes with performance comparable to that of conventional carbonate electrolytes were identified. The study revealed that the contact angle influenced the performance more significantly than the conductivity because the cells containing IL-tetrafluoroborate-based electrolytes with higher conductivity but poorer wetting showed significantly decreased performance relative to the cells containing IL-bis(trifluoromethanesulfonyl)imide electrolytes with lower conductivity but improved wetting properties. This work contributes to the development of new IL battery-based electrolyte systems with the potential to improve the deliverable energy content as well as safety of lithium-ion battery systems.


Coordination Chemistry Reviews | 2015

Cathode materials for magnesium and magnesium-ion based batteries

Matthew M. Huie; David C. Bock; Esther S. Takeuchi; Amy C. Marschilok; Kenneth J. Takeuchi


Chemistry of Materials | 2016

Electron/Ion Transport Enhancer in High Capacity Li-Ion Battery Anodes

Yo Han Kwon; Krysten Minnici; Matthew M. Huie; Kenneth J. Takeuchi; Esther S. Takeuchi; Amy C. Marschilok; Elsa Reichmanis


Chemistry of Materials | 2016

Electrode Reaction Mechanism of Ag2VO2PO4 Cathode

Ruibo Zhang; Tesfaye A. Abtew; Nicholas F. Quackenbush; Linda Wangoh; Matthew M. Huie; Alexander B. Brady; David C. Bock; Harry Efstathiadis; M. Stanley Whittingham; Amy C. Marschilok; Kenneth J. Takeuchi; Esther S. Takeuchi; Peihong Zhang; L. F. J. Piper


Journal of The Electrochemical Society | 2017

Rate Dependent Multi-Mechanism Discharge of Ag0.50VOPO4·1.8H2O: Insights from In Situ Energy Dispersive X-ray Diffraction

Matthew M. Huie; David C. Bock; Zhong Zhong; Andrea M. Bruck; Jiefu Yin; Esther S. Takeuchi; Kenneth J. Takeuchi; Amy C. Marschilok


Electrochimica Acta | 2016

Ionic liquid hybrids: Progress toward non-corrosive electrolytes with high-voltage oxidation stability for magnesium-ion based batteries

Matthew M. Huie; Christina A. Cama; Paul F. Smith; Jiefu Yin; Amy C. Marschilok; Kenneth J. Takeuchi; Esther S. Takeuchi


Journal of Physical Chemistry C | 2018

Lithiation of Magnetite (Fe3O4): Analysis Using Isothermal Microcalorimetry and Operando X-ray Absorption Spectroscopy

Matthew M. Huie; David C. Bock; Lei Wang; Amy C. Marschilok; Kenneth J. Takeuchi; Esther S Takeuchi


Electrochimica Acta | 2018

High capacity Li-ion battery anodes: Impact of crystallite size, surface chemistry and PEG-coating

Krysten Minnici; Yo Han Kwon; Matthew M. Huie; Mark V. de Simon; Bingjie Zhang; David C. Bock; J.X. Wang; Jun Wang; Kenneth J. Takeuchi; Esther S. Takeuchi; Amy C. Marschilok; Elsa Reichmanis


Journal of The Electrochemical Society | 2017

Synthetic Control of Crystallite Size of Silver Vanadium Phosphorous Oxide (Ag0.50VOPO4·1.9H2O): Impact on Electrochemistry

Matthew M. Huie; Amy C. Marschilok; Esther S. Takeuchi; Kenneth J. Takeuchi

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David C. Bock

Brookhaven National Laboratory

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Esther S Takeuchi

Brookhaven National Laboratory

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Amy C Marschilok

State University of New York System

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Elsa Reichmanis

Georgia Institute of Technology

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Jiefu Yin

Stony Brook University

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Kenneth J Takeuchi

State University of New York System

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Yo Han Kwon

Georgia Institute of Technology

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