研究目的
Investigating the spectroscopic behavior, ground and excited state dipole moments, FMO, NLO, and NBO analysis of two novel aryl boronic acid derivatives (2BPBA and 2IPBA) through experimental and theoretical methods.
研究成果
The study concludes that μe > μg for 2IPBA and μe < μg for 2BPBA, indicating structural differences affect dipole moments. Both compounds show good chemical stability from HOMO-LUMO gaps. NLO properties suggest potential applications in nonlinear optics, and NBO analysis confirms intramolecular charge transfer. Discrepancies between theoretical and experimental values are attributed to approximations in methods.
研究不足
The theoretical calculations assume compounds in the gas phase and exclude solute-solvent interactions, leading to discrepancies with experimental results. The solvatochromic methods do not fully account for specific interactions like hydrogen bonding, and the Onsager cavity radius estimation may introduce errors.
1:Experimental Design and Method Selection:
The study uses solvatochromic shift methods (Lippert's, Bakhshiev's, Kawski-Chamma-Viallet's equations) and Kamlet-Taft parameters to analyze solvent effects. Quantum chemical computations are performed using DFT/B3LYP/6?311++G(d,p) basis set for molecular modeling, FMO, NBO, NLO, and MEP analyses.
2:Sample Selection and Data Sources:
Two synthesized aryl boronic acid compounds (2BPBA and 2IPBA) are studied in various solvents (e.g., DMF, DMSO, acetonitrile, water, methanol, ethanol, propanol, toluene, 1,4-dioxane).
3:List of Experimental Equipment and Materials:
Spectrophotometer (Labomed UV 3600), spectrofluorimeter (Hitachi F-2700 FL), quartz cuvettes, solvents from S-D Fine Chemicals Ltd., India. Computational tools include Gaussian 9W software and NBO version 5.
4:Experimental Procedures and Operational Workflow:
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4. Experimental Procedures and Operational Workflow: Absorption and fluorescence spectra are recorded at room temperature with concentrations of 1×10^-4 M. Data is analyzed using linear correlations and quantum chemical calculations for dipole moments, polarizabilities, and other properties.
5:Data Analysis Methods:
Statistical analysis of spectral shifts, linear regression for solvent polarity functions, and DFT computations for electronic properties and NLO parameters.
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