4.7 Article

Making microporous nanometre-scale fibrous PLA aerogels with clean and reliable supercritical CO2 based approaches

期刊

MICROPOROUS AND MESOPOROUS MATERIALS
卷 184, 期 -, 页码 162-168

出版社

ELSEVIER SCIENCE BV
DOI: 10.1016/j.micromeso.2013.10.019

关键词

Aerogel; Nanofibre; Polylactic acid; Pore structure; Supercritical CO2

资金

  1. CSIC
  2. FSE
  3. Ministerio de Economia y Competitividad through the research project BIOREG [MAT2012-35161]
  4. Ministerio de Economia y Competitividad through the research project POLREMED [MAT2010-18155]

向作者/读者索取更多资源

Polylactic acid (PLA) aerogels, with a multiscale structure consisting of nanometre-scale fibres and interconnected micropores, were here fabricated by a novel thermal induced phase separation (TIPS) approach. The developed process is based on a biocompatible route combining ethyl lactate (EL) as a non-toxic solvent for PLA and supercritical CO2 (scCO(2)) as a clean drying agent. First, PLA was dissolved in EL to prepare homogeneous solutions with a polymer concentration ranging from 3 to 5.5 wt%. Subsequently, TIPS was generated by the controlled decrease of the temperature down to a temperature lower than the solution gelation point. Finally, solvent exchange, alcogel formation and scCO(2) drying allowed the manufacture of the desired nanometre-scale fibrous PLA aerogels. In particular, PLA aerogels with homogeneous morphology and constituted by an overall porosity in the range of 90-95% and a specific surface area in the range of 70-95 m(2)/g were manufactured by modulating polymer concentration in the starting EL solution, gelation temperature and EL extraction conditions. The obtained aerogels possessed a bimodal structure of fibres with a mean length of 100-200 nm coupled with nanopores of a mean diameter down to 2 nm. Finally, the combination of TIPS with gas foaming and porogen leaching techniques was explored as a suitable strategy to obtain multifunctional micro- and nano-sized fibrous PLA materials, suitable of providing biomimetic three-dimensional platforms for tissue engineering scaffolds. (C) 2013 Elsevier Inc. All rights reserved.

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