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Dive into the research topics where Megan M. Butala is active.

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Featured researches published by Megan M. Butala.


ACS Applied Materials & Interfaces | 2016

MnO Conversion in Li-Ion Batteries: In Situ Studies and the Role of Mesostructuring

Megan M. Butala; Katherine R. Danks; Margaret A. Lumley; Shiliang Zhou; Brent C. Melot; Ram Seshadri

Complex manganese oxides have been extensively studied as intercalation Li-ion battery electrodes. The simple oxide MnO has been proposed as a conversion anode material with a theoretical capacity of 756 mAh g(-1) for full reduction to the metal. We report the reaction of MnO with Li using in situ X-ray diffraction and find no sign of crystalline products upon either discharge or charge. However, the absence of reflections, paired with electrochemical impedance spectroscopy, suggests disordered discharge products. We also examine composite electrodes with porous particles of MnO as the active component, with pores generated through the reductive heating of Mn3O4. We compare the behavior of these with more dense MnO powders, including studies of the electrode morphologies pre- and postcyling. We find differences in the first discharge relevant to the utility of such mesostructuring in conversion reaction materials. Specifically, we find this type of mesostructure, which gives advantage in intercalation and pseudocapacitive storage, does not yield the same benefits for conversion reaction systems.


Journal of Crystal Growth | 2017

Floating zone growth of α-Na0.90MnO2 single crystals

Rebecca Dally; Raphaële J. Clément; Robin Chisnell; Stephanie R. Taylor; Megan M. Butala; Vicky V. T. Doan-Nguyen; Mahalingam Balasubramanian; Jeffrey W. Lynn; Clare P. Grey; Stephen D. Wilson

Abstract Single crystal growth of α -Na x MnO 2 ( x =0.90) is reported via the floating zone technique. The conditions required for stable growth and intergrowth-free crystals are described along with the results of trials under alternate growth atmospheres. Chemical and structural characterizations of the resulting α -Na 0.90 MnO 2 crystals are performed using ICP-AES NMR, XANES, XPS, and neutron diffraction measurements. As a layered transition metal oxide with large ionic mobility and strong correlation effects, α -Na x MnO 2 is of interest to many communities, and the implications of large volume, high purity, single crystal growth are discussed.


Applied Physics Letters | 2016

Microplasmas for direct, substrate-independent deposition of nanostructured metal oxides

Katherine Mackie; Andrew C. Pebley; Megan M. Butala; Jinping Zhang; Galen D. Stucky; Michael J. Gordon

A general, substrate-independent method for plasma deposition of nanostructured, crystalline metal oxides is presented. The technique uses a flow-through, micro-hollow cathode plasma discharge (supersonic microplasma jet) with a “remote” ring anode to deliver a highly directed flux of growth species to the substrate. A diverse range of nanostructured materials (e.g., CuO, α-Fe2O3, and NiO) can be deposited on any room temperature surface, e.g., conductors, insulators, plastics, fibers, and patterned surfaces, in a conformal fashion. The effects of deposition conditions, substrate type, and patterning on film morphology, nanostructure, and surface coverage are highlighted. The synthesis approach presented herein provides a general and tunable method to deposit a variety of functional and hierarchical metal oxide materials on many different surfaces. High surface area, conversion-type CuO electrodes for Li-ion batteries are demonstrated as a proof-of-concept example.


Chemistry of Materials | 2016

Molybdenum Polysulfide Chalcogels as High-Capacity, Anion-Redox-Driven Electrode Materials for Li-Ion Batteries

Vicky V. T. Doan-Nguyen; Kota S. Subrahmanyam; Megan M. Butala; Jeffrey A. Gerbec; Saiful M. Islam; Katherine N. Kanipe; Catrina E. Wilson; Mahalingam Balasubramanian; Kamila M. Wiaderek; Olaf J. Borkiewicz; Karena W. Chapman; Peter J. Chupas; Martin Moskovits; Bruce Dunn; Mercouri G. Kanatzidis; Ram Seshadri


Chemistry of Materials | 2017

Local Structure Evolution and Modes of Charge Storage in Secondary Li–FeS2 Cells

Megan M. Butala; Martin Mayo; Vicky V. T. Doan-Nguyen; Margaret A. Lumley; Claudia Göbel; Kamila M. Wiaderek; Olaf J. Borkiewicz; Karena W. Chapman; Peter J. Chupas; Mahalingam Balasubramanian; Geneva Laurita; Sylvia Britto; Andrew J. Morris; Clare P. Grey; Ram Seshadri


Crystal Growth & Design | 2014

Mesoporous Materials from Template-Free Vapor-Phase Reductive Leaching of Zn from Zn–M–O Compounds (M = Nb, Mo, W)

Claudia Lermer; Megan M. Butala; Bethany R. Lettiere; Ram Seshadri


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Journal of Physical Chemistry C | 2018

Operando Studies Reveal Structural Evolution with Electrochemical Cycling in Li–CoS2

Megan M. Butala; Vicky V. T. Doan-Nguyen; Anna J. Lehner; Claudia Göbel; Margaret A. Lumley; Shiri Arnon; Kamila M. Wiaderek; Olaf J. Borkiewicz; Karena W. Chapman; Peter J. Chupas; Mahalingam Balasubramanian; Ram Seshadri


Solid State Sciences | 2017

Rapid microwave-assisted preparation of binary and ternary transition metal sulfide compounds

Megan M. Butala; Minue A. Perez; Shiri Arnon; Claudia Göbel; Molleigh B. Preefer; Ram Seshadri


Acta Crystallographica Section A | 2017

Chalcogels as electrode materials for Li-ion batteries

Vicky V. T. Doan-Nguyen; Kota S. Subrahmanyam; Megan M. Butala; Jeffrey A. Gerbec; Saiful M. Islam; Katherine N. Kanipe; Catrina E. Wilson; Mahalingam Balasubramanian; Kamila M. Wiaderek; Olaf J. Borkiewicz; Karena W. Chapman; Peter J. Chupas; Martin Moskovits; Bruce Dunn; Mercouri G. Kanatzidis; Ram Seshadri

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Ram Seshadri

University of California

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Kamila M. Wiaderek

Argonne National Laboratory

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Karena W. Chapman

Argonne National Laboratory

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Olaf J. Borkiewicz

Argonne National Laboratory

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Peter J. Chupas

Argonne National Laboratory

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Bruce Dunn

University of California

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Claudia Göbel

University of California

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