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http://dx.doi.org/10.5658/WOOD.2017.45.4.471

Effect of Analytical Parameters of Gel Permeation Chromatography on Molecular Weight Measurements of Urea-Formaldehyde Resins  

Jeong, Bora (Department of Wood and Paper Sciences, Kyungpook National University)
Park, Byung-Dae (Department of Wood and Paper Sciences, Kyungpook National University)
Publication Information
Journal of the Korean Wood Science and Technology / v.45, no.4, 2017 , pp. 471-481 More about this Journal
Abstract
As the molecular weight (MW) of urea-formaldehyde (UF) resins had a great impact on their properties, this work was conducted to study effect of analytical parameters of gel permeation chromatography (GPC) on the MW measurement of UF resins. GPC parameters such as flow rate, column, detector temperature, and sample injection temperature were selected to compare number-average molecular weight (Mn), weight-average molecular weight (Mw), molecular weight distribution (MWD) and polydispersity index (PDI) of two UF resins with different viscosities. As expected, UF resin with higher viscosity resulted in greater Mn and Mw than those of low viscosity UF resin. When the flow rate increased, both Mn and Mw of UF resins decreased and MWD became narrower. By contrast, both Mn and Mw increased and MWD became wide when the column, detector, and sample injection temperature increased. The column, detector, and sample injection temperature of $50^{\circ}C$ at a flow rate of $0.5m{\ell}/min$ resulted in the highest MW and broadest MWD for the GPC analysis. These results suggest that the apparent molecular size or a hydrodynamic radius of UF resin molecules dissolved in the mobile phase affect to Mn, Mw and MWD.
Keywords
urea-formaldehyde resin; molecular weight; molecular weight distribution; gel permeation chromatography;
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1 Park, B.D., Riedl, B., Hsu, E.W., Shields, J. 1998. Effects of weight average molecular mass of phenol-formaldehyde adhesives on medium density fiberboard performance. Holz als Roh-und Werkstoff 56(3): 155-161.   DOI
2 Park, B.D., Kang, E.C., Park, J.Y. 2006. Effects of formaldehyde to urea mole ratio on thermal curing behavior of urea-formaldehyde resin and properties of particleboard. Journal of Applied Polymer Science 101(3): 1787-1792.   DOI
3 Pendlebury, E., Lei, H., Antoine, M.L., Pizzi, A. 2010. Melamine-Formaldehyde Resins without Urea for Wood Panels. Journal of Adhesion Science and Technology 24(8-10): 1415-1422.   DOI
4 Tomita, B., Hse, C.Y. 1993. Syntheses and structural analyses of cocondensed resins from urea and methylolphenols, Mokuzai Gakkaishi 39(11): 1276-1284.
5 Turunen, M., Alvila, L., Pakkanen, T.T., Raninio, J. 2003. Modification of phenol-formaldehyde resol resins by lignin, starch, and urea. Journal of Applied Polymer Science 88(2): 582-588.   DOI
6 Uglea, C.V. 1996. Liquid chromatography of oligomers (Vol. 72). Chaptet 4, 288-289. CRC Press. New York. USA.
7 Unger, K.K., Janzen, R. 1986. Packings and stationary phases in preparative column liquid chromatography. Journal of Chromatography A 373: 227-264.   DOI
8 Zanetti, M., Pizzi, A. 2003. Colloidal aggregation of MUF polycondensation resins: formulation influence and storage stability. Journal of applied polymer science 91(4): 2690-2699.   DOI
9 Arif, N., Park, B.D., Adya, P.S. 2014. Penetration of urea-formaldehyde resins with different formaldehyde/ urea mole ratios into softwood tissues, Wood Science and Technology 48: 889-902.
10 Abdullah, Z.A., Park, B.D. 2010. Influence of acrylamide copolymerization of urea-formaldehyde resin adhesives to their chemical structure and performance. Journal of Applied Polymer Science 117(6): 3181-3186.   DOI
11 Despres, A., Pizzi, A. 2006. Colloidal aggregation of aminoplastic polycondensation resins: urea-formaldehyde versus melamine-formaldehyde and melamine-urea-formaldehyde Resins, Journal of Applied Polymer Science 100: 1406-1412.   DOI
12 Dunky, M. 1998. Urea-formaldehyde (UF) adhesive resins for wood. International Journal of Adhesion and Adhesives 18(2): 95-107.   DOI
13 Ferra, J., Mendes, A., Costa, M.R., Carvalho, L., Magalhães, F.M. 2010. Characterization of urea-formaldehyde resins by GPC/SEC and HPLC techniques: effect of ageing. Journal of Adhesion Science and Technology 24: 1535-1551.   DOI
14 Ferra, J., Henriques, A., Mendes, A., Costa, M.R., Carvalho, L., Magalhaes, F.D. 2012. Comparison of UF synthesis by alkaline-acid and strongly acid processes. Journal of Applied Polymer Science 123(3): 1764-1772.   DOI
15 Ludlam, P.R., King, J.G. 1984. Size exclusion chromatography of urea formaldehyde resins in dimethylformamide containing lithium chloride. Journal of Applied Polymer Science 29(12): 3863-3872.   DOI
16 Iler, R., Mcqueston, H.J. 1974. U.S. Patent No. 3,855,172. Washington, DC: U.S. Patent and Trademark Office.
17 Jeong, B., Park, B.D. 2016. Measurement of molecular weights of melamine-urea-formaldehyde resins and their influences to properties of medium density fiberboards. Journal of the Korean Wood Science and Technology 44(6): 913-922.   DOI
18 Jeremejeff, J. 2012. Investigation of UF-resins-the Effect of the Formaldehyde/Urea Molar Ratio during Synthesis. Stockholm. Sweden.
19 Laborie, M.P.G., Salmen, L., Frazier, C.E. 2006. A morphological study of the wood/phenol-formaldehyde adhesive interphase. Journal of adhesion science and technology 20(8): 729-741.   DOI
20 Lei, H., Pizzi, A., Du, G., Despres, A. 2006. Variation of MUF and PMUF resins mass fractions during preparation. Journal of Applied Polymer Science 100(6): 4842-4855.   DOI
21 Majors, R.E. 1980. Recent advances in HPLC packings and columns. Journal of Chromatographic Science 18(10): 488-511.   DOI
22 Paiva, N.T., Pereira, J., Ferra, J.M., Cruz, P., Carvalho, L., Magalha, F.D. 2013. Study of influence of synthesis conditions on properties of melamine-urea formaldehyde resins. International Wood Products Journal 3: 51-57.