The Impact of Boron Compounds on the Structure and Ionic Conductivity of LATP Solid Electrolytes

Author:

Öksüzoğlu Fatih1ORCID,Ateş Şule2ORCID,Özkendir Osman Murat1ORCID,Çelik Gültekin2,Eker Yasin Ramazan3ORCID,Baveghar Hadi4ORCID,Basyooni-M. Kabatas Mohamed A.456ORCID

Affiliation:

1. Department of Energy Systems Engineering, Tarsus University, Mersin 33400, Türkiye

2. Department of Physics, Selçuk University, Konya 42075, Türkiye

3. Department of Metallurgy and Material Engineering, Necmettin Erbakan University, Konya 42060, Türkiye

4. Department of Precision and Microsystems Engineering, Delft University of Technology, Mekelweg 2, 2628 CD Delft, The Netherlands

5. Department of Nanotechnology and Advanced Materials, Graduate School of Applied and Natural Science, Selçuk University, Konya 42030, Türkiye

6. Solar Research Laboratory, Solar and Space Research Department, National Research Institute of Astronomy and Geophysics, Cairo 11421, Egypt

Abstract

The increasing demand for safe and high-energy-density battery systems has led to intense research into solid electrolytes for rechargeable batteries. One of these solid electrolytes is the NASICON-type Li1+xAlxTi2−x(PO4)3 (LATP) material. In this study, different boron compounds (10% B2O3 doped, 10% H3BO3 doped, and 5% B2O3 + 5% H3BO3 doped) were doped at total 10 wt.% into the Ti4+ sites of an LATP solid electrolyte to investigate the structural properties and ionic conductivity of solid electrolytes using the solid-state synthesis method. Characterization of the synthesized samples was conducted using X-ray diffraction (XRD), Raman spectroscopy, scanning electron microscopy (SEM), and electrochemical impedance spectroscopy (EIS). The XRD patterns of the boron-doped LATP (LABTP) samples show that the samples have a rhombohedral phase with space group R3¯c together and low amounts of impurity phases. While all the LABTP samples exhibited similar ionic conductivity values of around 10−4 S cm−1, the LABTP2 sample doped with 10 wt.% H3BO3 demonstrated the highest ionic conductivity. These findings suggest that varying B3+ ion doping strategies in LATP can significantly advance the development of solid electrolytes for all-solid-state lithium-ion batteries.

Funder

Selçuk University, Scientific Research Projects (BAP) Coordinating Office

Publisher

MDPI AG

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