- GND
- 1333821840
- ORCID
-
0000-0001-7002-6036
- SCOPUS
- 57202954855
- SCOPUS
- 60409481500
- Sonstiges
- der Hochschule zugeordnet
korrespondierende*r Autor*in
- SCOPUS
- 57208837937
- SCOPUS
- 60594022200
- SCOPUS
- 10640241700
- SCOPUS
- 57220337887
- SCOPUS
- 57218566097
- SCOPUS
- 60593721300
- SCOPUS
- 56275960000
- SCOPUS
- 8709677100
- SCOPUS
- 26663173500
- SCOPUS
- 57610808400
- SCOPUS
- 60593423700
- SCOPUS
- 57160147900
- SCOPUS
- 7006631334
- SCOPUS
- 57206697049
- SCOPUS
- 55933638200
- SCOPUS
- 16068325900
- GND
- 106404932X
- ORCID
-
0000-0002-2887-8312
- SCOPUS
- 24479616100
- Sonstiges
- der Hochschule zugeordnet
korrespondierende*r Autor*in
Abstract in Englisch:
This study reports the formulation of innovative electrolytes designed to improve safety, sustainability, and compatibility with LiNi0.92Mn0.04Co0.04O2 (NMC92) cathodes. The use of bio-based solvents (γ-valerolactone, GVL) and safe, stable, innovative co-solvents (diethylene glycol butyl ethyl ether, DEGBEE) is investigated in combination with imide- and borate-based salts, demonstrating reduced flammability and enhanced transport properties. Molecular dynamics simulations reveal their advantageous solvation characteristics, highlighting increased lithium-ion mobility in GVL-based electrolytes due to diminished ionic clustering. Overall, the investigated electrolytes exhibit outstanding electrochemical performance with NMC92 cathodes in a half-cell configuration, retaining above 80% of their initial capacity after 300 galvanostatic cycles at 1 C and an enhanced rate capability. This behavior is attributed to the inorganic nature of the resulting cathode-electrolyte interphase, as confirmed by ex situ x-ray photoelectron spectroscopy. Finally, the suitability of this novel formulation for real-scale application is evaluated at the pouch-cell level, demonstrating similar performance to benchmark formulations while enhancing overall device safety and sustainability.