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Dive into the research topics where Linda J. M. Davis is active.

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Featured researches published by Linda J. M. Davis.


Solid State Nuclear Magnetic Resonance | 2012

Studies of lithium ion dynamics in paramagnetic cathode materials using 6Li 1D selective inversion methods

Linda J. M. Davis; X.J. He; Alex D. Bain; Gillian R. Goward

The effectiveness of two different selective inversion methods is investigated to determine timescales of Li ion mobility in paramagnetic Li intercalation materials. The first method is 1D exchange spectroscopy, which employs a 90°-τ(1)-90° sequence for selective inversion of a Li resonance undergoing site exchange. The experiment is most easily applied when the first delay period, τ(1), is set to the frequency difference between two resonances undergoing ion exchange. This enables the determination of ion hopping timescales for single exchange pair systems only. To measure ion dynamics in systems having more than one exchange process, a second selective inversion method was tested on two paramagnetic Li intercalation materials. This second technique, replaces the 90°-τ(1)-90° portion of 1D EXSY with a long, selective shaped pulse (SP). Two paramagnetic solid-state materials, which are both cathode materials for lithion ion batteries, were chosen as model compounds to test the effectiveness of both the selective inversion methods. The first compound, Li(2)VPO(4)F, was chosen as it hosts two Li sites with 1-exchange process. The second model compound is a 3-site, 3-exchange process system, Li(2)VOPO(4). For the 2-site material, Li(2)VPO(4)F, the timescales of the single A-B exchange process were found to be within error of one another regardless of the inversion method. For the 3 Li-site material Li(2)VOPO(4), the three exchange processes, AB, BC, and AC, were found to be on the millisecond timescale as revealed using the SP method. These timescales were determined over a variable temperature range where activation energies extended from 0.6 ± 0.1 eV up to 0.9 ± 0.2 eV.


Chemistry of Materials | 2011

Structure and Electrochemistry of Two-Electron Redox Couples in Lithium Metal Fluorophosphates Based on the Tavorite Structure

Brian L. Ellis; T. N. Ramesh; Linda J. M. Davis; Gillian R. Goward; Linda F. Nazar


Chemistry of Materials | 2010

Study of Lithium Dynamics in Monoclinic Li3Fe2(PO4)3 using 6Li VT and 2D Exchange MAS NMR Spectroscopy

Linda J. M. Davis; Ivo Heinmaa; Gillian R. Goward


Journal of Physical Chemistry C | 2011

6Li 1D EXSY NMR Spectroscopy: A New Tool for Studying Lithium Dynamics in Paramagnetic Materials Applied to Monoclinic Li2VPO4F

Linda J. M. Davis; B. L. Ellis; T. N. Ramesh; Linda F. Nazar; A. D. Bain; Gillian R. Goward


Physical Chemistry Chemical Physics | 2011

Influence of particle size on solid solution formation and phase interfaces in Li0.5FePO4 revealed by 31P and 7Li solid state NMR spectroscopy

Linda J. M. Davis; Ivo Heinmaa; Brian L. Ellis; Linda F. Nazar; Gillian R. Goward


Journal of Physical Chemistry C | 2013

An Improved Understanding of Li+ Hopping Pathways and Rates in Li3Fe2(PO4)3 Using Selective Inversion 6Li NMR Spectroscopy

Danielle L. Smiley; Linda J. M. Davis; Gillian R. Goward


Journal of Physical Chemistry C | 2013

Differentiating Lithium Ion Hopping Rates in Vanadium Phosphate versus Vanadium Fluorophosphate Structures Using 1D 6Li Selective Inversion NMR

Linda J. M. Davis; Gillian R. Goward


223rd ECS Meeting (May 12-17, 2013) | 2013

Studies of Ion Dynamics in Cathode Materials for Lithium Ion Batteries Using Solid-State NMR

Danielle L. Smiley; Linda J. M. Davis; Gillian R. Goward


Meeting Abstracts | 2011

6Li NMR Studies of Ion Dynamics is Lithium Vanadium Phosphates and Fluorophosphates

Linda J. M. Davis; Xiulan (Janice) He; Xuan (Terry) He; Alex D. Bain; Gillian R. Goward


Meeting Abstracts | 2010

Studies of Ion Mobility in Lithium Vanadium Fluorophosphates Using Multinuclear Solid State NMR

Linda J. M. Davis; Lindsay S. Cahill; Linda Nazar; Gillian R. Goward

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Linda Nazar

Delft University of Technology

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Ivo Heinmaa

National Institute of Chemical Physics and Biophysics

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