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Synergistic Enhancement of Mechanical and Electrochemical Properties in Grafted Polymer/Oxide Hybrid Electrolytes

Scharf, Felix and Krude, Annalena and Lennartz, Peter and Clausnitzer, Moritz and Shukla, Gourav and Buchheit, Annika and Kempe, Fabian and Diddens, Diddo and Glomb, Pascal and Mitchell, Melanie M. and Danner, Timo and Heuer, Andreas and Latz, Arnulf and Winter, Martin and Brunklaus, Gunther (2024) Synergistic Enhancement of Mechanical and Electrochemical Properties in Grafted Polymer/Oxide Hybrid Electrolytes. Small, p. 2404537. Wiley. doi: 10.1002/smll.202404537. ISSN 1613-6810.

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Official URL: https://dx.doi.org/10.1002/smll.202404537

Abstract

Lithium metal batteries operated with high voltage cathodes are predestined for the realization of high energy storage systems, where solid polymer electrolytes offer a possibility to improve battery safety. Al2O3_PCL is introduced as promising hybrid electrolyte made from polycaprolactone (PCL) and Al2O3 nanoparticles that can be prepared in a one-pot synthesis as a random mixture of linear PCL and PCL-grafted Al2O3. Upon grafting, synergistic effects of mechanical stability and ionic conductivity are achieved. Due to the mechanical stability, manufacture of PCL-based membranes with a thickness of 50 µm is feasible, yielding an ionic conductivity of 5·10-5 S cm-1 at 60 °C. The membrane exhibits an impressive performance of Li deposition in symmetric Li Li cells, operating for 1200 h at a constant and low overvoltage of 54 mV and a current density of 0.2 mA cm-2. NMC622 Al2O3_PCL Li cells are cycled at rates of up to 1 C, achieving 140 cycles at >80% state of health. The straightforward synthesis and opportunity of upscaling as well as solvent-free polymerization render the Al2O3_PCL hybrid material as rather safe, potentially sustainable and affordable alternative to conventional polymer-based electrolytes.

Item URL in elib:https://elib.dlr.de/206632/
Document Type:Article
Title:Synergistic Enhancement of Mechanical and Electrochemical Properties in Grafted Polymer/Oxide Hybrid Electrolytes
Authors:
AuthorsInstitution or Email of AuthorsAuthor's ORCID iDORCID Put Code
Scharf, FelixUNSPECIFIEDhttps://orcid.org/0009-0004-2328-6176UNSPECIFIED
Krude, AnnalenaUNSPECIFIEDhttps://orcid.org/0009-0009-7494-4630UNSPECIFIED
Lennartz, PeterUNSPECIFIEDhttps://orcid.org/0000-0001-9619-4564UNSPECIFIED
Clausnitzer, MoritzUNSPECIFIEDhttps://orcid.org/0009-0000-4743-4947UNSPECIFIED
Shukla, GouravUNSPECIFIEDhttps://orcid.org/0009-0002-6259-3377UNSPECIFIED
Buchheit, AnnikaUNSPECIFIEDhttps://orcid.org/0000-0001-8131-3604UNSPECIFIED
Kempe, FabianUNSPECIFIEDhttps://orcid.org/0000-0002-1045-4781UNSPECIFIED
Diddens, DiddoUNSPECIFIEDhttps://orcid.org/0000-0002-2137-1332UNSPECIFIED
Glomb, PascalUNSPECIFIEDUNSPECIFIEDUNSPECIFIED
Mitchell, Melanie M.UNSPECIFIEDUNSPECIFIEDUNSPECIFIED
Danner, TimoUNSPECIFIEDhttps://orcid.org/0000-0003-2336-6059UNSPECIFIED
Heuer, AndreasUNSPECIFIEDUNSPECIFIEDUNSPECIFIED
Latz, ArnulfUNSPECIFIEDhttps://orcid.org/0000-0003-1449-8172UNSPECIFIED
Winter, MartinUNSPECIFIEDUNSPECIFIEDUNSPECIFIED
Brunklaus, GuntherUNSPECIFIEDhttps://orcid.org/0000-0003-0030-1383UNSPECIFIED
Date:26 August 2024
Journal or Publication Title:Small
Refereed publication:Yes
Open Access:Yes
Gold Open Access:No
In SCOPUS:Yes
In ISI Web of Science:Yes
DOI:10.1002/smll.202404537
Page Range:p. 2404537
Publisher:Wiley
ISSN:1613-6810
Status:Published
Keywords:solid state battery, hybrid solid electrolyte, grafting, experiment, modeling
HGF - Research field:Energy
HGF - Program:Materials and Technologies for the Energy Transition
HGF - Program Themes:Electrochemical Energy Storage
DLR - Research area:Energy
DLR - Program:E SP - Energy Storage
DLR - Research theme (Project):E - Electrochemical Storage
Location: Ulm
Institutes and Institutions:Institute of Engineering Thermodynamics > Computational Electrochemistry
Deposited By: Danner, Timo
Deposited On:16 Oct 2024 17:34
Last Modified:18 Oct 2024 10:51

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