Our #BACCARAfellow Elina Nazmutdinova published an article on the influence of Li3InCl6-PEDOT:PSS hybrids in solid-state #batteries, where the composites were prepared via an aqueous one-pot approach: https://chemistry-europe.onlinelibrary.wiley.com/doi/10.1002/batt.202300434

Congratulations to all authors 🥳!

A warm welcome to our new #BACCARAfellow Linus Altemöller, who recently started his work on "Supramolecular and Macromolecular Concepts for Redox-Flow #Battery Systems" in the group of Prof. Bart-Jan Ravoo. #battchat
We are very pleased that the third doctoral thesis of our programme has recently been submitted: #BACCARAfellow Valentin Göldner worked on the topic of "Expanding the scope of mass spectrometry for the identification of electrochemical transformation products". Congrats! 🎉

This year's Power Day was again a great success.

Our #BACCARAfellow Simon Albers gave an interview what the Power Day is all about: https://www.uni-muenster.de/news/view.php?cmdid=13542&lang=en

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The news portal offers current information about studies, research and life at Münster University.

Great news: #BACCARAfellow Linda Quach of the group of our speaker Prof. Glorius defended her Ph.D. thesis as the first of our students! 🍾

Her work was on film-forming electrolyte additives and the development of methodologies for the photocatalytic transformation of organic molecules.

Congratulations!🎉

Have a look at the new preprint by our #BACCARAfellow Elina Nazmutdinova and coworkers on "Water-mediated synthesis of halide solid #electrolyte and conducting polymer hybrid materials for all solid-state #batteries". They developed a water-mediated one-pot synthesis of Li3InCl6 with PEDOT:PSS for use as catholyte component and tested it in combination with NMC particles. https://chemrxiv.org/engage/chemrxiv/article-details/640205d937e01856dc1677b7
#iPECLab #battchat @MicrotoPico
Water-mediated synthesis of halide solid electrolyte and conducting polymer hybrid materials for all solid-state batteries

Over the last decades, we have seen an increase in the number of new materials that can be incorporated into all-solid-state batteries (ASSBs). Halide solid electrolytes have attracted significant attention due to their superior stability against oxide-based cathode active materials when compared to sulfide-based solid electrolytes. Nonetheless, the dynamicity of interparticle contact during cycling in ASSBs hinders their stability and performance. Therefore, inactive materials such as electronically conductive additives and polymer binders are needed to compensate the contact-loss reducing the energy density of the resulting cells. Here, we present an aqueous approach for the preparation of halide solid electrolyte-conductive polymer hybrid composites with Li3InCl6 and poly(3,4-ethylendioxythiophene)/poly(styrene sulfonate) (PEDOT:PSS) in one-pot. The resulting composites combine the properties of a solid electrolyte with a conductive additive and a binder together with into a single hybrid material. Together with other analytical techniques, Kelvin Probe Force Microscopy (KPFM) imaging showed a successful synthesis of the hybrid materials and revealed that the conductive polymer (CP), namely PEDOT:PSS, is located at the surface/grain of the Li3InCl6. Upon incorporation of such composites in sulfide solid-state half-cells with lithium nickel manganese cobalt oxide (NMC) cathode active material (CAM) we observe an increase in the partial electronic transport of the catholytes with increasing CP content, which correlates an increase in the initial discharge capacities. This study sets the stage to explore the preparation of multi-functional catholytes without the necessity of organic solvents, extremely high temperatures or special environments.

ChemRxiv

Please have a look at the newest publication of our #BACCARAfellow Henry Woolley, dealing with a review on hybrid solid-liquid electrolyte systems for (almost) solid state #batteries.

Henry works in the #iPECLab under supervision of Dr. Nella Vargas-Barbosa.

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https://pubs.rsc.org/en/content/articlelanding/2023/ta/d2ta02179j
#battchat #ASSB

Hybrid solid electrolyte-liquid electrolyte systems for (almost) solid-state batteries: Why, how, and where to?

All-solid-state batteries (SSBs) offer an alternative to current state of the art lithium-ion batteries, promising improved safety and higher energy densities due to the incorporation of non-flammable solid electrolytes and Li metal as an anode material. Despite this SSBs face numerous issues, including the