The densities, ρ12, and speeds of sound, u12, of 1-ethyl-3-methylimidazolium tetrafluoroborate (1) + N-methylformamide or N,N-dimethylformamide (2) binary mixtures at (293.15. 298.15. 303.15, 308.15 K), and excess molar enthalpies, H12E\documentclass[12pt]{minimal}
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\begin{document}$$ H_{12}^{\text{E}} $$\end{document}, of the same mixtures at 298.15 K have been measured over the entire mole fraction range using a density and sound analyzer (Anton Paar DSA-5000) and a 2-drop microcalorimeter, respectively. Excess molar volume, V12E\documentclass[12pt]{minimal}
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\begin{document}$$ V_{12}^{\text{E}} $$\end{document}, and excess isentropic compressibility, (κSE)12\documentclass[12pt]{minimal}
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\begin{document}$$ \left( {\kappa_{S}^{\text{E}} } \right)_{12} $$\end{document}, values have been calculated by utilizing the measured density and speed of sound data. The observed data have been analyzed in terms of: (i) Graph theory and (ii) the Prigogine–Flory–Patterson theory. Analysis of the V12E\documentclass[12pt]{minimal}
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\begin{document}$$ V_{12}^{\text{E}} $$\end{document} data in terms of Graph theory suggest that: (i) in pure 1-ethyl-3-methylimidazolium tetrafluoroborate, the tetrafluoroborate anion is positioned over the imidazoliun ring and there are interactions between the hydrogen atom of (C–H{edge}) and proton of the –CH3 group (imidazolium ring) with fluorine atoms of tetrafluoroborate anion, and (ii) (1 + 2) mixtures are characterized by ion–dipole interactions to form a 1:1 molecular complex. Further, the V12E\documentclass[12pt]{minimal}
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\begin{document}$$ V_{12}^{\text{E}} $$\end{document}, H12E\documentclass[12pt]{minimal}
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\begin{document}$$ H_{12}^{\text{E}} $$\end{document} and (κSE)12\documentclass[12pt]{minimal}
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\begin{document}$$ \left( {\kappa_{S}^{\text{E}} } \right)_{12} $$\end{document} values determined from Graph theory compare well with their measured experimental data.