TY - JOUR
T1 - Enzymatic Polymerization of Dimethyl 2,5-Furandicarboxylate and Heteroatom Diamines
AU - Maniar, Dina
AU - Hohmann, Katharina F.
AU - Jiang, Yi
AU - Woortman, Albert J. J.
AU - van Dijken, Jurjen
AU - Loos, Katja
N1 - doi: 10.1021/acsomega.8b01106
PY - 2018/6
Y1 - 2018/6
N2 - Previously, we have synthesized a diverse range of 2,5-furandicarboxylic acid (FDCA)-based semiaromatic polyamides via enzymatic polymerization. This novel class of polymers are biobased alternatives to polyphthalamides, which are petrol-based semiaromatic polyamides. From a commercial perspective, they have interesting properties as high-performance materials and engineering thermoplastics. It is even more appealing to explore novel FDCA-based polyamides with added functionality, for the development of sustainable functional materials. Here, a set of FDCA-based heteroatom polyamides have been successfully produced via Novozyme 435 (N435)-catalyzed polymerization of biobased dimethyl 2,5-furandicarboxylate with (potentially)heteroatom diamines, namely, 4,9-dioxa-1,12-dodecanediamine (DODA), diethylenetriamine, and 3,3-ethylenediiminopropylamine. We performed the enzymatic polymerization in solution and bulk. The latter approach is more sustainable and results in higher molecular weight products. Among the tested heteroatom diamines, N435 shows the highest catalytic activity toward DODA. Furthermore, we find that all obtained FDCA-based heteroatom polyamides are amorphous materials with a relatively high thermal stability. These heteroatom polyamides display a glass-transition temperature ranging from 41 to 107 degrees C.
AB - Previously, we have synthesized a diverse range of 2,5-furandicarboxylic acid (FDCA)-based semiaromatic polyamides via enzymatic polymerization. This novel class of polymers are biobased alternatives to polyphthalamides, which are petrol-based semiaromatic polyamides. From a commercial perspective, they have interesting properties as high-performance materials and engineering thermoplastics. It is even more appealing to explore novel FDCA-based polyamides with added functionality, for the development of sustainable functional materials. Here, a set of FDCA-based heteroatom polyamides have been successfully produced via Novozyme 435 (N435)-catalyzed polymerization of biobased dimethyl 2,5-furandicarboxylate with (potentially)heteroatom diamines, namely, 4,9-dioxa-1,12-dodecanediamine (DODA), diethylenetriamine, and 3,3-ethylenediiminopropylamine. We performed the enzymatic polymerization in solution and bulk. The latter approach is more sustainable and results in higher molecular weight products. Among the tested heteroatom diamines, N435 shows the highest catalytic activity toward DODA. Furthermore, we find that all obtained FDCA-based heteroatom polyamides are amorphous materials with a relatively high thermal stability. These heteroatom polyamides display a glass-transition temperature ranging from 41 to 107 degrees C.
KW - UNSATURATED ALIPHATIC POLYESTERS
KW - RENEWABLE RESOURCES
KW - CATALYZED SYNTHESIS
KW - BIOBASED POLYESTERS
KW - POLYAMIDES
KW - ACID
KW - POLYMERS
KW - MONOMERS
KW - FUTURE
KW - FURANS
U2 - 10.1021/acsomega.8b01106
DO - 10.1021/acsomega.8b01106
M3 - Article
VL - 3
SP - 7077
EP - 7085
JO - ACS Omega
JF - ACS Omega
SN - 2470-1343
IS - 6
ER -