Park Soo-Jin, Jun Byung-Ryul
Advanced Materials Division, Korea Research Institute of Chemical Technology, P.O. Box 107, Yusong, Taejon 305-600, South Korea.
J Colloid Interface Sci. 2005 Apr 1;284(1):204-9. doi: 10.1016/j.jcis.2004.09.074.
The effects of chemical treatments on red mud (RM) were investigated in terms of thermal stabilities of PMMA/RM and PVC/RM nanocomposites. N2/77 K adsorption behavior and contact angles were studied in the pore structures and surface energetics of RM, respectively. Thermal stabilities of the nanocomposites were investigated using a thermal mechanical analyzer (TMA) and thermogravimetric analysis (TGA). As a result, the acidically treated RM (ARM) had higher adsorption properties, including specific surface area, than untreated RM (VRM) or basically treated RM (BRM). A change in the structure of the ARM surface was due to hydrolysis or leaching a metal salt out of RM. Also, the electron acceptor (gamma(S)+, acid) of ARM and the electron donor (gamma(S)-, base) of BRM were increased in the development of acid and basic functional groups, respectively. PMMA/ARM nanocomposites had higher thermal stability and mechanical interfacial properties than PMMA/VRM or BRM nanocomposites. These results were due to the improvements of the dispersion properties and acid-base interfacial interactions of basic PMMA and ARM. In this work, although the dispersion properties of the BRM decreased, the thermal stabilities and mechanical interfacial properties of PVC/BRM nanocomposites increased, which could be attributed to improvement in the interfacial interactions between acidic PVC and BRM.
从聚甲基丙烯酸甲酯/赤泥(PMMA/RM)和聚氯乙烯/赤泥(PVC/RM)纳米复合材料的热稳定性方面,研究了化学处理对赤泥(RM)的影响。分别研究了RM的孔结构中的N₂/77K吸附行为和表面能中的接触角。使用热机械分析仪(TMA)和热重分析(TGA)研究了纳米复合材料的热稳定性。结果表明,酸处理赤泥(ARM)比未处理赤泥(VRM)或碱处理赤泥(BRM)具有更高的吸附性能,包括比表面积。ARM表面结构的变化是由于RM发生水解或金属盐浸出。此外,在酸性和碱性官能团的发展过程中,ARM的电子受体(γ(S)+,酸)和BRM的电子供体(γ(S)-,碱)分别增加。PMMA/ARM纳米复合材料比PMMA/VRM或PMMA/BRM纳米复合材料具有更高的热稳定性和机械界面性能。这些结果归因于碱性PMMA和ARM的分散性能以及酸碱界面相互作用的改善。在这项工作中,尽管BRM的分散性能下降,但PVC/BRM纳米复合材料的热稳定性和机械界面性能增加,这可归因于酸性PVC和BRM之间界面相互作用的改善。