Molecular Photothermal Effect on the 2D-IR Spectroscopy of Acetonitrile-Based Li-Ion Battery Electrolytes.
So Yeon ChunJoong Won ShimKyungwon KwakMinhaeng ChoPublished in: The journal of physical chemistry letters (2024)
Advancements in Li-ion battery (LIB) technology hinge on an understanding of Li-ion solvation and charge transport dynamics. Ultrafast two-dimensional infrared (2D-IR) spectroscopy has been used to investigate these dynamics in electrolytes by probing chemical exchange processes through time-dependent cross-peak analysis. However, accurate interpretation is complicated by factors such as vibrational energy transfer and molecular photothermal effect (MPTE), affecting cross-peak evolution. Pinpointing the precise origin of these cross-peaks has posed a significant challenge in time-resolved IR spectroscopic studies of LIB electrolytes. Here, we trace the origin of 2D-IR cross-peaks of LIB electrolytes utilizing acetonitrile as a solvent. Time-dependent analysis of LiSCN and CH 3 SCN mixtures in CD 3 CN revealed distinctive MPTE features. Furthermore, direct observation of intermolecular MPTE through two-color IR pump-probe spectroscopy lends support to the findings. Our results emphasize the non-negligible artifacts induced by MPTE and the necessity of considering these effects to accurately observe the ultrafast dynamics within LIB electrolytes.
Keyphrases
- solid state
- energy transfer
- ionic liquid
- ion batteries
- quantum dots
- single molecule
- molecular dynamics simulations
- photodynamic therapy
- drug delivery
- room temperature
- molecular docking
- computed tomography
- drug release
- molecular dynamics
- magnetic resonance imaging
- single cell
- living cells
- squamous cell carcinoma
- mass spectrometry
- solar cells
- density functional theory