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Maria L. Sushko

Researcher at Pacific Northwest National Laboratory

Publications -  91
Citations -  7721

Maria L. Sushko is an academic researcher from Pacific Northwest National Laboratory. The author has contributed to research in topics: Adsorption & Ion. The author has an hindex of 32, co-authored 85 publications receiving 5932 citations. Previous affiliations of Maria L. Sushko include London Centre for Nanotechnology & Russian Academy of Sciences.

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Dendrite-Free Lithium Deposition via Self-Healing Electrostatic Shield Mechanism

TL;DR: This work shows a novel mechanism that can fundamentally alter dendrite formation in lithium-ion batteries as well as other metal batteries and transform the surface uniformity of coatings deposited in many general electrodeposition processes.
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Sodium ion insertion in hollow carbon nanowires for battery applications.

TL;DR: Hollow carbon nanowires prepared through pyrolyzation of a hollow polyaniline nanowire precursor deliver high reversible capacity and excellent cycling stability and the good Na-ion insertion property is attributed to the short diffusion distance in the HCNWs and the large interlayer distance.
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Manipulating Adsorption–Insertion Mechanisms in Nanostructured Carbon Materials for High‐Efficiency Sodium Ion Storage

TL;DR: In this paper, a series of nanostructured hard carbon materials with controlled architectures is synthesized using a combination of in situ X-ray diffraction mapping, ex situ nuclear magnetic resonance (NMR), electron paramagnetic resonance, electrochemical techniques, and simulations.
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Non-flammable electrolytes with high salt-to-solvent ratios for Li-ion and Li-metal batteries

TL;DR: In this article, an approach that improves the stability of non-flammable phosphate electrolytes by adjusting the molar ratio of Li salt to solvent was proposed. But their compatibility with electrode materials, especially graphite anodes, remains an obstacle owing to the strong catalytic activity of the anode surfaces.
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High-performance LiNi0.5Mn1.5O4 spinel controlled by Mn3+ concentration and site disorder.

TL;DR: The complex correlation between Mn(3+) ions and the disordered phase in the lattice structure of high voltage spinel, and its effect on the charge transport properties, are revealed through a combination of experimental study and computer simulations.