| Literature DB >> 28708109 |
Na Li1, Huanhuan Wang2, Xiaosai Qu3, Yu Chen4.
Abstract
ROMP is an effective method for preparing functional polymers due to its having characteristics of "living" polymerization and rapid development of catalysts. In the present work, poly(norbornene-methylamine), a mimic of chitosan, was synthesized via ROMP reaction. The amino-protected product, 5-norbornene-2-(N-methyl)-phthalimide, was prepared by a reaction of 5-norbornene-2-methylamine with phthalic anhydride, which was then subjected to the ROMP reaction in the presence of Hoveyda-Grubbs 2nd catalyst to afford poly(norbornene-(N-methyl)-phthalimide). The target product, poly(norbornene-methylamine), was obtained by deprotection reaction of poly(norbornene-(N-methyl)-phthalimide). The products in each step were characterized by FTIR and ¹H-NMR, and their thermal stabilities were determined by TG analysis. The effects of molar ratio between monomer ([M]/[I]) and catalyst on the average relative molecular weight ( M n ¯ ) and molecular weight distribution of the produced polymer products were determined by gel permeation chromatography (GPC). It was found that the M n ¯ of poly(norbornene-(N-methyl)-phthalimide) was controllable and exhibited a narrow polydispersity index (PDI) (~1.10). The synthesis condition of 5-norbornene-2-(N-methyl)-phthalimide was optimized by determining the yields at different reaction temperatures and reaction times. The highest yield was obtained at a reaction temperature of 130 °C and a reaction time of 20 min. Our work provides a new strategy to synthesize polymers with controllable structures and free -NH₂ groups via ROMP.Entities:
Keywords: ROMP; chitosan; controllable; living polymerization; poly(norbornene-methylamine)
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Year: 2017 PMID: 28708109 PMCID: PMC5532665 DOI: 10.3390/md15070223
Source DB: PubMed Journal: Mar Drugs ISSN: 1660-3397 Impact factor: 5.118
Scheme 1The reaction mechanism of ROMP.
Scheme 2The reaction route for preparing poly(norbornene-methylamine) by ROMP.
Figure 1FTIR spectra of raw materials and synthesized products.
Figure 21H-NMR spectra of products 1, 2 and 3.
Figure 3TG characterization of products 2 and 3. (a) TG curves of products 2 and 3. (b) DTG curves of products 2 and 3.
Figure 4Yields of product 1 under different reaction conditions. (a) Effects of reaction temperature on the yield of product 1. (b) Effects of reaction time on the yield of product 1 at 130 °C.
Figure 5and PDI of poly(norbornene-(N-methyl)-phthalimide) prepared by a 2 h ROMP at room temperature with different [M]/[I] ratios.