研究目的
To probe and distinguish the molecular vibrations of aprotic solvents at the solid/liquid interface using nanogap surface-enhanced Raman spectroscopy for insights into lithium-ion battery electrolyte behavior.
研究成果
Nanogap SERS effectively probes and distinguishes molecular vibrations of aprotic solvents at the solid/liquid interface, revealing blueshifts in FEC due to stiffer bonds. Quadratic dependencies of SERS intensity on molar concentration enable quantitative analysis, providing insights for electrolyte development in lithium-ion batteries and other SLI-critical applications.
研究不足
The SERS enhancement is limited to specific nanogap regions, and the technique may not capture all molecular interactions; quantum tunneling effects at very small gaps could reduce signal intensity. The empirical models require further validation for broader applicability.
1:Experimental Design and Method Selection:
Utilized nanogap surface-enhanced Raman spectroscopy (SERS) with a monolayer gold nanoparticle ensemble to enhance electromagnetic fields and probe molecular vibrations near the solid/liquid interface. Theoretical models included FDTD simulations for EM-field distribution and DFT calculations for molecular vibrations.
2:Sample Selection and Data Sources:
Used pure carbonate solvents (EC, DEC, FEC) and binary mixtures. Samples were purchased from BASF and used as received.
3:List of Experimental Equipment and Materials:
Gold nanoparticles synthesized via seed-growth method, Ni-coated quartz substrates, transparent Raman pouch cells, SEM (Hitachi S4800), TEM (JEOL 2011), Raman spectroscope (inVia Renishaw), FTIR spectrometer (Bruker ALPHA), refractometer (Mettler Toledo RM40).
4:0). Experimental Procedures and Operational Workflow:
4. Experimental Procedures and Operational Workflow: Au NP monolayers self-assembled on substrates, SERS measurements performed with 785 nm laser, IR spectra collected with ATR accessory, refractive indices measured, computational simulations (FDTD and DFT) conducted.
5:Data Analysis Methods:
Analyzed SERS and IR spectra, calculated enhancement factors, performed peak deconvolution, used empirical polynomial fits, and applied PCA-MCR analysis for quantitative assessment.
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Scanning Electron Microscope
S4800
Hitachi
Obtaining micrographs of Au NP monolayers
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Transmission Electron Microscopy
JEOL 2011
JEOL
Characterizing Au NP monolayers
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FTIR Spectrometer
ALPHA
Bruker
Collecting IR spectra
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Raman Spectroscope
inVia
Renishaw
Performing SERS experiments
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Refractometer
RM40
Mettler Toledo
Measuring refractive indices
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Heat Sealer
AIE200
Sealing transparent Raman pouch cells
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Gold Nanoparticle
SERS substrate
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Ethylene Carbonate
BASF
Solvent in experiments
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Diethyl Carbonate
BASF
Solvent in experiments
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Fluoroethylene Carbonate
BASF
Additive in experiments
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