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Published on: July 4, 2016
Effect of amide-modified attapulgite on the crystallization and supercritical CO2 foaming behavior of poly(lactic
Qianjin Xiang1, Weijun Zhen1, Tengfei Shao1
1State Key Laboratory of Chemistry and Utilization of Carbon Based Energy Resources, Key Laboratory of Oil and Gas Fine Chemicals, Ministry of Education and Xinjiang Uygur Autonomous Region, School of Chemical Engineering and Technology, Xinjiang University, Urumqi, 830017, Xinjiang, China.
Abstract:
In this work, amidation-modified ATP (A-ATP) was prepared with attapulgite (ATP) through acid washing activation, silane coupling, and amidation reactions. Then, A-ATP was characterization by FTIR, contact angle measurements, XPS, XRD, and TGA, which confirmed the removal of carbonate impurities, successful introduction of hydrophobic groups (contact angle increased from 7° to 70°), and maintenance of stable crystalline structure in A-ATP. Furthermore, polylactic acid (PLA)/A-ATP nanocomposite foams were fabricated via supercritical CO2 autoclave foaming technology with PLA as the matrix and A-ATP as the filler. It was demonstrated that 0.6 wt% A-ATP significantly optimized the foam structure (smallest average cell size with reduced standard deviation) and enhanced compressive properties. Specifically, the compressive strength of PLA/A-ATP nanocomposite foams reached 116.61 kPa, and its specific compressive modulus was 5639 kPa/(g·cm-3), representing 99 % and 142 % improvements over PLA, respectively. DSC and rheological behavior indicated that A-ATP reduced PLA's cold crystallization temperature, increased crystallinity up to 17.94 %, and improved melt fluidity. Molecular dynamics simulations further revealed that 0.6 wt% A-ATP promoted CO2 diffusion in PLA, elevated the diffusion coefficient from 2.711 × 10-6 to 4.190 × 10-6 cm2/s. This study provides a novel strategy for enhancing the performance of PLA foams.
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