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Sodium-ion diffusion mechanisms in the low cost high voltage cathode material Na2+δFe2−δ/2(SO4)3

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TLDR
Further new alluaudite type transition metal sulphates can only be expected to yield a high rate performance, if their synthesis ensures the presence of a comparable transition metal sub-stoichiometry and/or a suitably tailored concentration of sodium/transition metal antisite defects.
Abstract
Bond-valence site energy modelling, classical molecular dynamics and DFT simulations were employed to clarify Na+ ion migration in monoclinic Na2+δFe2−δ/2(SO4)3, the recently reported first representative of a new promising class of alluaudite-type high voltage cathode materials for sodium-ion batteries. Empirical potential parameters derived from our softBV bond valence parameter set reproduce experimental unit-cell parameters. Migration energy barrier calculations based on both these empirical and on ab initio approaches consistently show a strongly anisotropic and fairly fast Na+ ion mobility along partially occupied Na(3) channels in the c-direction. Nominally fully occupied Na(1) sites are attached to these paths with a moderate activation energy as sources of mobile ions. At elevated temperatures separate parallel Na(2) channels contribute to the ionic conductivity. As such one-dimensional pathways are highly vulnerable to blocking by structural defects, the experimentally observed favourable rate performance can only be understood as a consequence of cross-linking of the channels to a more robust higher-dimensional migration pathway network. Our static and dynamic bond valence pathway models for representative local structure models reveal that this cross-linking is achieved by the iron deficiency of the compound: iron vacancies act as low-lying interstitial sites that can be reached from both types of channels with moderate activation energies. Structural relaxations around the vacancies however reduce the sodium mobility along the channels. An analogous dual effect of blocking migration along the channels and promoting perpendicular migration would result from Na+/Fe2+ antisite defects. Hence, further new alluaudite type transition metal sulphates can only be expected to yield a high rate performance, if their synthesis ensures the presence of a comparable transition metal sub-stoichiometry and/or a suitably tailored concentration of sodium/transition metal antisite defects.

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Recent Progress in Electrode Materials for Sodium-Ion Batteries

TL;DR: In this paper, a review of recent progress on electrode materials for NIBs, including the discovery of new electrode materials and their Na storage mechanisms, is briefly reviewed, and efforts to enhance the electrochemical properties of NIB electrode materials as well as the challenges and perspectives involving these materials are discussed.
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Stability and ionic mobility in argyrodite-related lithium-ion solid electrolytes

TL;DR: A wide range of known and predicted thiophosphates are explored with a particular focus on the cubic argyrodite phase with a robust three-dimensional network of ion migration pathways, to yield phases with the optimum balance between chemical stability and ionic conductivity.
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Recent achievements on polyanion-type compounds for sodium-ion batteries: Syntheses, crystal chemistry and electrochemical performance

TL;DR: In this paper, a review of polyanion-type cathode materials for sodium ion batteries is presented, focusing mainly on their crystal chemistry and electrochemical behaviors, as well as their properties.
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Top-down synthesis of muscle-inspired alluaudite Na2+2xFe2−x(SO4)3/SWNT spindle as a high-rate and high-potential cathode for sodium-ion batteries

TL;DR: In this article, a top-down strategy was proposed to tailor the alluaudite Na2+2xFe2−x(SO4)3 into a muscle-like spindle.
Journal ArticleDOI

Sodium Intercalation Mechanism of 3.8 V Class Alluaudite Sodium Iron Sulfate

TL;DR: In this article, the intercalation mechanism of a Na-ion battery cathode material with earth-abundant elements was surveyed via synchrotron X-ray diffraction (XRD), 23Na nuclear magnetic resonance (NMR), density functional theory (DFT) calculations, and Xray absorption near edge structure (XANES), and Mossbauer spectroscopy.
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