journal article Open Access Apr 21, 2022

Theoretical and Experimental Studies of Hydrogen Bonded Dihydroxybenzene Isomers Polyurethane Adhesive Material

Polymers Vol. 14 No. 9 pp. 1701 · MDPI AG
View at Publisher Save 10.3390/polym14091701
Abstract
Hydrogen bonding in polyurethane (PU) is imposed by molecular parameters. In this study, the effect of structural isomerism of certain monomers on hydrogen bonding of waterborne polyurethane (WBPU) was studied theoretically and experimentally. Two dihydroxybenzene (DHB)-based structural isomers such as catechol (CC) and hydroquinone (HQ), with different OH positions on the inner benzene core, had been used. Two series of WBPU dispersions were prepared using CC and HQ with defined contents. The binding energies between the catechol (CC)/hydroquinone (HQ) (respective OH group) and urethane/urea were calculated theoretically. By using a density functional theory (DFT) method, it was found that the largest binding energy between the urea and CC was higher than that of urea and HQ. The FT-IR analysis of synthesized polymer was also carried out to compare the results with the theoretical values. The CC-based polymers showed a stronger hydrogen bond both theoretically and experimentally than those for HQ-based polymers. The higher level of hydrogen bond was reflected in their properties of CC-based polymers. The adhesive strength, thermal stability, and hydrophobicity were higher for CC-based materials than those for HQ-based materials. The adhesive strength was increased 25% with the addition of 2.0 wt% CC content. This adhesive strength slightly deviated at a moderately high temperature of 80 °C.
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References
21
[1]
Density-functional thermochemistry. III. The role of exact exchange

Axel D. Becke

The Journal of Chemical Physics 1993 10.1063/1.464913
[2]
Development of the Colle-Salvetti correlation-energy formula into a functional of the electron density

Chengteh Lee, Weitao Yang, Robert G. Parr

Physical Review B 1988 10.1103/physrevb.37.785
[4]
Harper "Predicting Trigger Bonds in Explosive Materials through Wiberg Bond Index Analysis" ChemPhysChem (2015) 10.1002/cphc.201500773
[5]
Chattopadhyay "Structural engineering of polyurethane coatings for high performance applications" Prog. Polym. Sci. (2007) 10.1016/j.progpolymsci.2006.05.003
[6]
Chattopadhyay "Thermal stability and flame retardancy of polyurethanes" Prog. Polym. Sci. (2009) 10.1016/j.progpolymsci.2009.06.002
[8]
Christopher "Comparative study of effect of corrosion on mild steel with waterborne polyurethane dispersion containing graphene oxide versus carbon black nanocomposites" Prog. Org. Coat. (2015) 10.1016/j.porgcoat.2015.09.022
[9]
Rahman "Properties of Waterborne Polyurethane Adhesives: Effect of Chain Extender and Polyol Content" J. Adhes. Sci. Technol. (2009) 10.1163/156856108x344667
[10]
Rahman "Synthesis and characterization of waterborne polyurethane adhesives containing different amount of ionic groups (I)" J. Appl. Polym. Sci. (2006) 10.1002/app.25052
[11]
Wang "Lignin-Based Polyurethanes from Unmodified Kraft Lignin Fractionated by Sequential Precipitation" ACS Appl. Polym. Mater. (2019) 10.1021/acsapm.9b00228
[12]
Fang "Tailoring elastomeric properties of waterborne polyurethane by incorporation of polymethyl methacrylate with nanostructural heterogeneity" RSC Adv. (2016) 10.1039/c5ra26664e
[13]
Tian "Applications of adhesives in textiles: A review" Eup. Polym. J. (2022) 10.1016/j.eurpolymj.2022.111089
[14]
Xu "Synthesis of polypropylene carbonate polyol-based waterborne polyurethane modified with polysiloxane and its film properties" Fibers Polym. (2014) 10.1007/s12221-014-0665-2
[15]
Rahman "Properties of crosslinked waterborne polyurethane adhesives with modified melamine: Effect of curing time, temperature, and HMMM content" Fibers Polym. (2009) 10.1007/s12221-009-0006-z
[16]
Saralegi "Effect of H12MDI isomer composition on mechanical and physico-chemical properties of polyurethanes based on amorphous and semicrystalline soft segments" Polym. Bull. (2013) 10.1007/s00289-013-0930-3
[17]
Ren "Catechol-containing waterborne polyurethane adhesive inspired by mussel proteins" J. Appl. Polym. Sci. (2021) 10.1002/app.51382
[18]
Huang, C.-C., Chen, Y.-F., Suen, S.-Y., Lin, C.-H., and Dai, S.A. (2015). Synthesis and evaluation of alkoxylated-ether diols of hydroquinone with different chain-lengths as extenders in segmented polyurethanes. J. Polym. Res., 22. 10.1007/s10965-015-0812-5
[19]
Zhang "Theoretical study of hydrogen bonding interactions on MDI-based polyurethane" J. Mol. Model. (2010) 10.1007/s00894-010-0645-4
[20]
Frisch, M.J., Trucks, G.W., Schlegel, H.B., Scuseria, G.E., Robb, M.A., Cheeseman, J.R., Scalmani, G., Barone, V., Petersson, G.A., and Nakatsuji, H. (2016). Gaussian 16 Rev. C.0, Gaussian Inc.
[21]
Mary "Molecular structure, NBO analysis of the hydrogen-bonded interactions, spectroscopic (FT–IR, FT–Raman), drug likeness and molecular docking of the novel anti COVID-2 molecule (2E)-N-methyl-2-[(4-oxo-4H-chromen-3-yl)methylidene]-hydrazinecarbothioamide (Dimer)—quantum chemical approach" Spectrochim. Acta Part A: Mol. Biomol. Spectrosc. (2020) 10.1016/j.saa.2020.119388
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