Transport Properties and Local Ions Dynamics in LATP‐Based Hybrid Solid Electrolytes

Author:

Boaretto Nicola1ORCID,Ghorbanzade Pedram123,Perez‐Furundarena Haritz1,Meabe Leire1,López del Amo Juan Miguel1,Gunathilaka Isuru E.4,Forsyth Maria456,Schuhmacher Jörg7,Roters Andreas7,Krachkovskiy Sergey8,Guerfi Abdelbast8,Armand Michel1,Martinez‐Ibañez María1

Affiliation:

1. Centre for Cooperative Research on Alternative Energies CIC energiGUNE Basque Research and Technology Alliance (BRTA) Alava Technology Park Albert Einstein 48 Vitoria‐Gasteiz 01510 Spain

2. University of Basque Country (UPV/EHU) Barrio Sarriena s/n Leioa 48940 Spain

3. ALISTORE‐European Research Institute, CNRS, Hub de l’Energie Amiens 80039 France

4. Institute for Frontier Materials Deakin University Geelong VIC 3217 Australia

5. Ikerbasque Basque Foundation for Science Bilbao 48013 Spain

6. POLYMAT University of the Basque Country UPV/EHU Joxe Mari Korta Center Donostia‐San Sebastián 200018 Spain

7. SCHOTT AG Hattenbergstraße 10 55122 Mainz Germany

8. Center of Excellence in Transportation Electrification and Energy Storage (CETEES) Hydro‐Québec 1806 Boul. Lionel‐Boulet Varennes Québec J3×1S1 Canada

Abstract

AbstractHybrid solid electrolytes (HSEs), namely mixtures of polymer and inorganic electrolytes, have supposedly improved properties with respect to inorganic and polymer electrolytes. In practice, HSEs often show ionic conductivity below expectations, as the high interface resistance limits the contribution of inorganic electrolyte particles to the charge transport process. In this study, the transport properties of a series of HSEs containing Li(1+x)AlxTi(2–x)(PO4)3 (LATP) as Li+‐conducting filler are analyzed. The occurrence of Li+ exchange across the two phases is proved by isotope exchange experiment, coupled with 6Li/7Li nuclear magnetic resonance (NMR), and by 2D 6Li exchange spectroscopy (EXSY), which gives a time constant for Li+ exchange of about 50 ms at 60 °C. Electrochemical impedance spectroscopy (EIS) distinguishes a short‐range and a long‐range conductivity, the latter decreasing with LATP concentration. LATP particles contribute to the overall conductivity only at high temperatures and at high LATP concentrations. Pulsed field gradient (PFG)‐NMR suggests a selective decrease of the anions’ diffusivity at high temperatures, translating into a marginal increase of the Li+ transference number. Although the transport properties are only marginally affected, addition of moderate amounts of LATP to polymer electrolytes enhances their mechanical properties, thus improving the plating/stripping performance and processability.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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