1] Limbeck U., Altwicker C., Kunz U. & Hoffmann U., “Rate expression for THF synthesis on acidic ion exchange resin”, Chemical Engineering Science, Vol. 56, pp. 2171–2178, 2001.
[2] Vaidya S.H., Bhandari V.M. & Chaudhari R.V., “Reaction kinetics studies on catalytic dehydration of 1,4-butanediol using cation exchange resin”, Applied Catalysis A: General, Vol. 242, pp. 321–328, 2003.
[3] Castiglioni G.L., Ferrari M., Guercio A., Vaccari A., Lancia R. & Fumagalli C., “Chromium – free catalysts for selective vapor phase hydrogenation of maleic anhydride to γ - butyrolactone”, Catalysis Today, Vol. 27, pp. 181–186, 1996.
[4] Jung S.M., Godard E., Jung S.Y., Park K. & Choi J.U., “Liquid – phase hydrogenation of maleic anhydride over Pd/SiO2: effect of tin on catalytic activity and deactivation”, Journal of Molecular Catalysis A: Chemical, Vol. 198, pp. 297–302, 2003.
[5] Herrmann U. & Emig G., “Liquid phase hydrogenation of maleic anhydride and intemediates on copper – based and noble metal catalysts”, Ind. Eng. Chem. Res., Vol. 36, pp. 2885–2896, 1997.
[6] Herrmann U. & Emig G., “Liquid phase hydrogenation of maleic anhydride to 1,4 – butanediol in a packed bubble column reactor”, Ind. Eng. Chem. Res., Vol. 37, pp. 759–769, 1998.
[7] Jeong H., Kim T.H., Kim K.I. & Cho S.H., “The hydrogenation of maleic anhydride to γ-butyrolactone using mixed metal oxide catalysts in a batch-type reactor”, Fuel Processing Technology, Vol. 87, pp. 497-503, 2006.
[8] Hu T., Yin H., Zhang R., Wu H., Jiang T. & Wada Y., “Gas phase hydrogenation of maleic anhydride to g-butyrolactone by Cu-Zn-Ti catalysts”, Catalysis Communications, Vol. 8, pp. 193-198, 2007.
[9] Kuksal A., Klemm E. & Emig G., “Reaction kinetics of the liquid–phase hydrogenation of succinic anhydride on CuZno–catalysts with varying copper– to –zinc ratios in a three–phase slurry reactor”, Applied Catalysis A: General, Vol. 228, pp. 237–251, 2002.
[10] Turek T., Trimm D.L., Black D.S. & Cant N.W., “Hydrogenolysis of dimethyl succinate on copper–based catalysts”, Applied Catalysis A: General, Vol. 116, pp. 137–150, 1994.
[11] Cybulski A., Chrzaszcz J. & Twigg M.V., “Hydrogenation of dimethyl succinate over monolithic catalysts”, Catalysis Today, Vol. 69, pp. 241–245, 2001.
[12] Ohlinger C. & Kraushaar–Czarnetzki B., “Improved processing stability in the hydrogenation of dimethyl maleate to γ -butyrolactone, 1, 4–butanediol and tetrahydrofuran”, Chemical Engineering Science, Vol. 58, pp. 1453–1461, 2003.
[13] Muller S.P., Kucher M., Ohlinger C. & Kraushaar–Czarnetzki B., “Extrusion of Cu/Zno catalysts for the single – stage gas – phase processing of dimethyl maleate to tetrahydrofuran”, Journal of catalysis, Vol. 218, pp. 419–426, 2003.
[14] Chaudhari R.V., Jaganathan R., Vaiya S.H., Chaudhari S.T., Naik R.V. & Rode C.V., “Hydrogenation of diethyl maleate in a fixed – bed catalytic reactor: kinetics, reactor modelling and pilot plant studies”, Chemical Engineering Science, Vol. 54, pp. 3643–3651, 1999.
[15] Schlander J.H. & Turek T., “Gas – Phase Hydrogenolysis of Dimethyl Maleate to 1,4 –Butanediol and γ-butyrolactone over Copper / Zinc oxide catalysts”, Ind. Eng. Chem. Res., Vol. 38, pp. 1264–1270, 1999.
[16] Chaudhari R.V., Rode C.V., Deshpande R.M., Jaganathan R., Leib T.M. & Mills P.L., “Kinetics of hydrogenation of maleic acid in a batch slurry reactor using a bimetallic Ru – Re/C catalyst”, Chemical Engineering Science, Vol. 58, pp. 627–632, 2003.
[17] Chaudhari R.V., Jaganathan R., Vaiya S.H., Chaudhari S.T., Naik R.V. & Rode C.V., “Hydrogenation of diethyl maleate in a fixed – bed catalytic reactor: kinetics, reactor modelling and pilot plant studies”, Chemical Engineering Science, Vol. 54, pp. 3643–3651, 1999.
[18] Guo P.J., Chen L.F., Yan S.R., Dai W.L., Qiao M.H., Xu H.L. & Fan K.N., “One-step hydrogenolysis of dimethyl maleate to tetrahydrofuran over chromium-modified Cu-B/γ-Al2O3 catalysts”, Journal of Molecular catalysis A: Chemical, Vol. 256, pp. 164-170, 2006.
[19] Vaidya S.H., Rode C.V. & Chaudhari R.V., “Bimetallic Pt-Sn/γ-alumina catalyst for highly selective liquid phase hydrogenation of diethyl succinate to γ-butyrolactone”, Catalysis Communications, Vol. 8, pp. 340-346, 2007.
[20] Pillai U.R., Sahle–Demessie E. & Young D., “Maleic anhydride hydrogenation over Pd/Al2O3 catalyst under supercritical CO2 medium”, Applied Catalysis B: Environmental, Vol. 43, pp. 131–138, 2003.
[21] Lu W., Lu G., Guo Y., Guo Y. & Wang Y., “Gas – phase hydrogenation of maleic anhydride to butyric acid over Cu/TiO2/γ - Al2O3 catalyst promoted by Pd”, Catalysis Communications, Vol. 4, pp. 177–181, 2003.
[22] Jung S.M., Godard E. & Jung S.Y., “Liquid – phase hydrogenation of maleic anhydride over Pd – Sn / SiO2”, Catalysis Today, Vol. 87, pp. 171–177, 2003.
[23] Pu L., Ye L. & Yuanqi Y., “Homogeneous hydrogenation of maleic anhydride to succinic anhydride catalyzed by Rh complex catalyst”, Journal of Molecular Catalysis A: Chemical, Vol. 138, pp. 129–133, 1999.
[24] Castiglioni G.L., Vaccari A. & Fierro G., “Structure and reactivity of copper–zinc–cadmium–chromite catalysts”, Applied Catalysis A: General, Vol. 123, pp. 123–144, 1995.
[25] Aghaziarati M., Kazemeini M., Soltanieh M. & Sahebdelfar S., “Evaluation of zeolites in production of tetrahydrofuran from 1,4-butanediol: performance tests and kinetic investigations”, Ind. Eng. Chem. Res., Vol. 46, pp. 726-733, 2007.
[26] Aghaziarati M., Soltanieh M., Kazemeini M. & Khandan N., “Synthesis of tetrahydrofuran from maleic anhydride on Cu–ZnO–ZrO2/H-Y bifunctional catalysts”, Catalysis Communications, Vol. 9, pp. 2195–2200, 2008.