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From D-sorbitol to five-membered bis(cyclo-carbonate) as a platform molecule for the synthesis of different original biobased chemicals and polymers

机译:从D-山梨糖醇到五元双(环碳酸酯)作为平台分子用于合成不同的原始生物基化学品和聚合物

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摘要

Bis(cyclo-carbonate) was successfully synthesized from D-sorbitol (Sorb-BisCC) through an environmentally friendly process with dimethyl carbonate (DMC) as a reactant. In agreement with green chemistry principles, solvent free reactions were catalyzed and took place at low temperature. The reaction yield was increased until 50%, with the use of 1.3.5-triazabicyclo[4.4.0]dec-5-ene as catalyst and a continuous DMC feed to limit the side-reactions or the loss of reactant by azeotropic flux with a reactional subsidiary product. The obtained Sorb-BisCC is a remarkable platform molecule which could compete with others polycyclic platform molecules (isosorbide). Sorb-BisCC can be e.g., used to synthesize different chemicals such as short and long polyols, or novel biobased non-isocyanate polyurethanes (NIPU). Two Sorb-BisCC molecules have been coupled to obtain novel cyclic diols with pendant side chains. Polyether polyols were also obtained by anionic ring opening polymerization. According to the synthesis conditions, these synthetized polyether polyols range from partially to highly cross-linked materials. Finally, NIPU were synthesized with short and biobased fatty diamines. These different modifications and synthesis highlight the versatility of the Sorb-BisCC and demonstrated its high potential as building block. Sorb-BisCC can be considered as a platform molecule to open the way to different original and biobased chemical architectures.
机译:通过以碳酸二甲酯(DMC)为反应物的环境友好方法成功地从D-山梨糖醇(Sorb-BisCC)合成了Bis(环碳酸酯)。根据绿色化学原理,无溶剂反应被催化并在低温下发生。使用1.3.5-三氮杂双环[4.4.0] dec-5-ene作为催化剂和连续的DMC进料,以限制共沸助熔剂的副反应或反应物的损失,使反应收率提高至50%。反应性副产品。所得的Sorb-BisCC是一种显着的平台分子,可以与其他多环平台分子(异山梨醇)竞争。 Sorb-BisCC可以例如用于合成不同的化学物质,例如短和长多元醇,或新型的生物基非异氰酸酯聚氨酯(NIPU)。已将两个Sorb-BisCC分子偶联以获得具有侧链侧链的新型环状二醇。聚醚多元醇也通过阴离子开环聚合获得。根据合成条件,这些合成的聚醚多元醇的范围从部分到高度交联的材料。最后,将NIPU与短的和基于生物的脂肪二胺合成。这些不同的修饰和合成突出了Sorb-BisCC的多功能性,并证明了其作为基础材料的巨大潜力。 Sorb-BisCC可以被视为平台分子,为通往不同的原始和生物基化学结构开辟了道路。

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