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dc.contributor.authorHogrefe, Katharina
dc.contributor.authorKonigsreiter, Jana
dc.contributor.authorBernroitner, Anna
dc.contributor.authorGadermaier, Bernhard
dc.contributor.authorAshbrook, Sharon E.
dc.contributor.authorWilkening, Martin
dc.date.accessioned2024-01-12T09:30:08Z
dc.date.available2024-01-12T09:30:08Z
dc.date.issued2024-01-06
dc.identifier298139042
dc.identifier603d2517-ca98-4530-aaaa-d3304d78c699
dc.identifier85182007297
dc.identifier.citationHogrefe , K , Konigsreiter , J , Bernroitner , A , Gadermaier , B , Ashbrook , S E & Wilkening , M 2024 , ' Length-scale-dependent ion dynamics in Ca-doped Na 3 PS 4 ' , Chemistry of Materials , vol. Articles ASAP . https://doi.org/10.1021/acs.chemmater.3c02874en
dc.identifier.issn0897-4756
dc.identifier.otherORCID: /0000-0002-4538-6782/work/150660877
dc.identifier.urihttps://hdl.handle.net/10023/28997
dc.descriptionThe UK High-Field Solid-State NMR Facility used in this research was funded by EPSRC and BBSRC (EP/T015063/1), as well as the University of Warwick including part funding through Birmingham Science City Advanced Materials Projects 1 and 2 supported by Advantage West Midlands (AWM) and the European Regional Development Fund (ERDF). The funding for K. Hogrefe by Stipendien der Monatshefte für Chemie is greatly appreciated. We appreciate financial support by the Deutsche Forschungsgemeinschaft (DFG) [WI3600 (4-1 and 2-1)] and by the FFG projects CERES and safeLIB.en
dc.description.abstractThe sodium ion conductor Na3PS4 is a promising electrolyte for future all-solid-state batteries using Na+ ions as ionic charge carriers. Its readily available components make it a compelling and more sustainable alternative to recent Li-ion technologies. At ambient temperature, the ionic conductivity is in the order of 10–4 S cm–1, which can be optimized by adjusting doping and processing parameters. Even though several studies have focused on explaining the dynamic properties of doped and undoped Na3PS4, the driving forces that lead to fast Na+ exchange are not yet completely understood. Here, we synthesized nanocrystalline, defect-rich cubic Na3PS4 via a solid-state synthesis route and compared its properties with those of highly crystalline Ca-doped Na3–2xCaxPS4. The interconnected effects of doping and synthesis procedure on both structure and dynamic properties are investigated. X-ray diffraction reveals that the undoped samples show clear cubic and tetragonal symmetry, while for the doped samples, a phase mixture of both polymorphs is seen. High-resolution 23Na magic angle spinning NMR spectra acquired at temperatures as low as −60 °C clearly reveal two different Na sites when ionic motion is partially frozen out. Ion dynamics of the powder samples were analyzed using high-precision broadband impedance spectroscopy and variable-temperature, time-domain 23Na NMR spin–lattice relaxation rate measurements. Localized Na+ jumps detected by NMR showed higher energy barriers but faster Na+ dynamics for the Ca-doped samples. A similar trend was observed in conductivity spectroscopy with lowest activation energy for Na-ion transport in tetragonal Na3PS4 but highest attempt frequencies for the hopping motion in Ca-doped Na3PS4 with x = 0.135, making the doped sample the superior ion conductor at elevated temperatures. Our study highlights the importance of breaking down ionic transport in its elemental steps to understand the complex interplay of intrinsic and extrinsic parameters in solid electrolyte materials.
dc.format.extent14
dc.format.extent2762446
dc.language.isoeng
dc.relation.ispartofChemistry of Materialsen
dc.subjectIon conductoren
dc.subjectNA3PS4en
dc.subjectSolid electrolyteen
dc.subjectNa+ conductoren
dc.subjectIonic conductoren
dc.subjectIonic conductivityen
dc.subjectDopingen
dc.subjectDynamic propertiesen
dc.subject23Na NMRen
dc.subjectMAS NMRen
dc.subjectIonic motionen
dc.subjectIon dynamicsen
dc.subjectSpectroscopyen
dc.subjectQD Chemistryen
dc.subjectATC-NDASen
dc.subject.lccQDen
dc.titleLength-scale-dependent ion dynamics in Ca-doped Na3PS4en
dc.typeJournal articleen
dc.contributor.sponsorEPSRCen
dc.contributor.institutionUniversity of St Andrews. School of Chemistryen
dc.contributor.institutionUniversity of St Andrews. EaSTCHEMen
dc.identifier.doi10.1021/acs.chemmater.3c02874
dc.description.statusPeer revieweden
dc.identifier.grantnumberEP/T014350/1en


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