Catalyzed non-isocyanate polyurethane (NIPU) coatings from bio-based poly(cyclic carbonates)

被引:40
作者
Yu, Arvin Z. [1 ]
Setien, Raul A. [1 ]
Sahouani, Jonas M. [1 ]
Docken, James, Jr. [1 ]
Webster, Dean C. [1 ]
机构
[1] North Dakota State Univ, Dept Coatings & Polymer Mat, Fargo, ND 58105 USA
来源
JOURNAL OF COATINGS TECHNOLOGY AND RESEARCH | 2019年 / 16卷 / 01期
基金
美国国家科学基金会;
关键词
Non-isocyanate; Polyurethanes; Bio-based; Coatings; EPOXIDIZED SUCROSE SOYATE; HIGH FUNCTIONALITY POLYOLS; CYCLIC CARBONATE; HIGH-PERFORMANCE; SOYBEAN-OIL; THERMOSET COATINGS; POLYMERIZATION; PARAMETERS; CHEMISTRY; NETWORKS;
D O I
10.1007/s11998-018-0135-7
中图分类号
O69 [应用化学];
学科分类号
081704 ;
摘要
Formulations of bio-based poly(cyclic carbonates) and amines using cooperative catalysis were studied to produce non-isocyanate polyurethanes (NIPUs). Concerns on the use of isocyanates as starting materials for polyurethanes (PUs) have risen due to their effects on human health after exposure and also because their synthesis involves the use of phosgene. Polyurethanes are highly versatile materials used in widespread industries such as automotive, building, construction, and packaging. They have also been used as flexible and rigid foams, adhesives, coatings, thermoplastic, or thermoset materials. Traditionally, PUs are synthesized from polyols and polyisocyanates. In order to circumvent the concerns, much research has been devoted to exploring alternative approaches to the synthesis of PUs. NIPU synthesis using cyclic carbonates and amines has gained popularity as one of the new approaches. In this study, novel bio-based resins were synthesized by converting epoxidized sucrose soyate into carbonated sucrose soyate (CSS) under supercritical conditions. Initial studies have shown promise in systems where CSS is crosslinked with multifunctional amines generating coatings with good solvent resistance. This work focused on studying the effect of catalysts and developing formulations of bio-based non-isocyanate polyurethane coatings.
引用
收藏
页码:41 / 57
页数:17
相关论文
共 50 条
[1]   Organocatalyzed Synthesis of Oleochemical Carbonates from CO2 and Renewables [J].
Buettner, Hendrik ;
Steinbauer, Johannes ;
Wulf, Christoph ;
Dindaroglu, Mehmet ;
Schmalz, Hans-Guenther ;
Werner, Thomas .
CHEMSUSCHEM, 2017, 10 (06) :1076-1079
[2]   A study of cyclic carbonate aminolysis at room temperature: effect of cyclic carbonate structures and solvents on polyhydroxyurethane synthesis [J].
Cornille, Adrien ;
Blain, Marine ;
Auvergne, Remi ;
Andrioletti, Bruno ;
Boutevin, Bernard ;
Caillol, Sylvain .
POLYMER CHEMISTRY, 2017, 8 (03) :592-604
[3]  
Corrigan PJ, 2003, US Patent, Patent No. [6,620,952, 6620952]
[4]   On the Versatility of Urethane/Urea Bonds: Reversibility, Blocked Isocyanate, and Non-isocyanate Polyurethane [J].
Delebecq, Etienne ;
Pascault, Jean-Pierre ;
Boutevin, Bernard ;
Ganachaud, Francois .
CHEMICAL REVIEWS, 2013, 113 (01) :80-118
[5]   Polyurethane rigid foam, a proven thermal insulating material for applications between +130°C and -196°C [J].
Demharter, A .
CRYOGENICS, 1998, 38 (01) :113-117
[6]   AVERAGE FUNCTIONALITIES OF MACROMOLECULES IN STEPWISE POLYFUNCTIONAL POLYMERIZATION [J].
DURAND, D ;
BRUNEAU, CM .
POLYMER, 1982, 23 (01) :69-72
[7]  
DURAND D, 1982, MAKROMOL CHEM, V183, P1021
[8]   A Facile and Green Route for Conversion of Bifunctional Epoxide and Vegetable Oils to Cyclic Carbonate: A Green Route to CO2 Fixation [J].
Farhadian, Abdolreza ;
Afshani, Meisam Babapour Gol ;
Miyardan, Ahmad Babaei ;
Nabid, Mohammad Reza ;
Safari, Nasser .
CHEMISTRYSELECT, 2017, 2 (04) :1431-1435
[9]  
Figovsky O., 2016, ISJAEE, V3, P95, DOI DOI 10.15518/ISJAEE.2016.03-04.009
[10]  
Garipov R.M., 2003, REACTIVITY CYCLOCARB, P289