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Experimental and Theoretical Investigations of CO2 Sorption by a 3D In-MOF with Multiple 1D Channels

机译:具有多个1D通道的3D In-MOF吸收CO2的实验和理论研究

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The CO2 sorption capacity of the 3D In-MOF (Et2NH2)[In(2,6-NDC)(2)]2H(2)ODEF (I) (where 2,6-NDC is 2,6-naphthalenedicarboxylate and DEF is N,N-diethylformamide) was investigated. The solvent-free I contains three distinct types of 1D micropores with different shapes and pore dimensions. The evacuated I sorbed 297.2 cm(3)g(-1) (13.3 mmolg(-1)) of CO2 at 196 K, 72.2 cm(3)g(-1) (3.22 mmolg(-1)) at 273 K, and 39.8 cm(3)g(-1) (1.78 mmolg(-1)) at 298 K. The difference between the uptake at 196 K and those at 273 and 298 K is relatively large. The shapes of the sorption isotherms are also dramatically different. At 196 K, the adsorption-desorption isotherms are S-shaped without significant hysteretic behavior between the adsorption and desorption branches. On the contrary, the adsorption isotherms measured at 273 and 298 K fit well with the Langmuir-Freundlich equation. The low-surface-coverage isosteric heat (Q(st)) of CO2 adsorption by I is 19.6 kJmol(-1). Detailed estimations of the adsorption sites for CO2 were then performed by DFT calculations. The calculated binding energies were typically dependent on the dimension of the micropores when nonbonding (van der Waals) interactions were considered; the larger the micropore dimensions, the smaller the calculated binding energy. In addition, not only the framework CHOCO contacts for Ch3 but also the counter-cation CHOCO contacts for Ch1 and Ch2 were found to be important.
机译:3D In-MOF(Et2NH2)[In(2,6-NDC)(2)] 2H(2)ODEF(I)(其中2,6-NDC是2,6-萘二甲酸酯和DEF是研究了N,N-二乙基甲酰胺。无溶剂I包含三种不同类型的一维微孔,它们具有不同的形状和孔径。抽空后的I在196 K时吸收297.2 cm(3)g(-1)(13.3 mmolg(-1))的CO2,在273 K时吸收72.2 cm(3)g(-1)(3.22 mmolg(-1)),和在298 K时为39.8 cm(3)g(-1)(1.78 mmolg(-1))。196 K和273和298 K时的吸收差异较大。吸附等温线的形状也有很大不同。在196 K时,吸附-解吸等温线为S形,在吸附和解吸支链之间没有明显的滞后行为。相反,在273和298 K下测得的吸附等温线与Langmuir-Freundlich方程非常吻合。 I吸附CO2的低表面覆盖等排热(Q(st))为19.6 kJmol(-1)。然后通过DFT计算对CO2的吸附位点进行详细估算。当考虑非键合(范德华力)相互作用时,计算的结合能通常取决于微孔的尺寸。微孔尺寸越大,计算的结合能越小。另外,发现不仅Ch3的骨架CHOCO接触,而且Ch1和Ch2的抗阳离子CHOCO接触也很重要。

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