School of Chemistry, Chemical Engineering and Life Science, Wuhan University of Technology, Luoshi Road 122, Wuhan, China.
School of Chemistry, Chemical Engineering and Life Science, Wuhan University of Technology, Luoshi Road 122, Wuhan, China; Université Grenoble Alpes, Laboratoire Génie des Procédés Papetiers (LGP2), F-38000 Saint Martin d'Hères Cedex, France.
Carbohydr Polym. 2015 Sep 20;129:208-15. doi: 10.1016/j.carbpol.2015.04.061. Epub 2015 May 8.
The biodegradable foamed nanocomposites were developed from the reinforcement of surface acetylated cellulose nanocrystals (ACNC) as bionanofillers and the poly(butylene succinate) (PBS) as polymeric matrix. The surface modification of high-efficiency acetylation on the cellulose nanocrystals converted the hydrophilic hydroxyl groups to hydrophobic acetyl groups, which improved the compatibility between rigid nanoparticles and polyester matrix through the similar ester groups of two components. With the introduction of 5 wt% ACNC, the specific flexural strength (σ/ρf) and the specific flexural modulus (E/ρf) of the foamed composites significantly increased by 75.7% and 57.2% in comparison with those of the neat PBS foamed material. Meanwhile, with the change of the ACNC concentrations, the cell size and cell density of the foamed composites can be regulated and achieved the high cell density of 1.95 × 10(5)cells/cm(3) bearing the small average cell size of 178.84 μm (5 wt% ACNC). The microstructure observation of the foamed composites indicated the moderate loading levels of rigid ACNC can serve as the reinforcing phase for the stress transfer and promote the crystallinity advancement of the foamed composites.
研究了以乙酰化纤维素纳米晶(ACNC)作为生物纳米填料和聚丁二酸丁二醇酯(PBS)作为聚合物基体制备的可生物降解泡沫纳米复合材料。通过高效的乙酰化表面改性,将纤维素纳米晶上的亲水性羟基转化为疏水性乙酰基,通过两种组分的类似酯基改善了刚性纳米颗粒与聚酯基体之间的相容性。在引入 5wt% ACNC 的情况下,与纯 PBS 发泡材料相比,泡沫复合材料的比弯曲强度(σ/ρf)和比弯曲模量(E/ρf)分别显著提高了 75.7%和 57.2%。同时,随着 ACNC 浓度的变化,泡沫复合材料的泡孔尺寸和泡孔密度可以得到调节,并实现了具有小平均泡孔尺寸 178.84μm(5wt% ACNC)的高泡孔密度 1.95×10(5)cells/cm(3)。泡沫复合材料的微观结构观察表明,适量刚性 ACNC 的加入可以作为应力传递的增强相,促进泡沫复合材料的结晶度提高。