Kanbua Chonlada, Rattanawongwiboon Thitirat, Khamlue Rattapon, Ummartyotin Sarute
Department of Materials and Textile Technology, Faculty of Science and Technology, Thammasat University, Patumtani 12120, Thailand.
Thailand Institute of Nuclear Technology (Public Organization), Ongkharak, Nakorn Nayok 26120, Thailand.
Int J Biol Macromol. 2023 Sep 1;248:125844. doi: 10.1016/j.ijbiomac.2023.125844. Epub 2023 Jul 16.
Sulfonated cellulose (SC) was successfully prepared through a two-step process of gamma radiation and subsequently sulfonation with potassium metabisulfite of microcrystalline cellulose extracted from sugarcane bagasse. The effect of gamma radiation dose on cellulose showed an increment of oxidation degree, which was evidenced by the intensity ratio of I (carbonyl)/ I (aliphatic) from FTIR analysis. The obtained SC was introduced into polyether block amide/polyethylene glycol diacrylate (PEBAX/PEGDA) polymer matrix as a reinforcement and hydrophilic filler for improving electrolyte affinity and thermal stability of its composite membrane. The increase of SC in PEBAX/PEGDA composite membranes resulted in enhancement of hydrophilicity, electrolyte uptake, and thermal stability compared to pristine composite membranes. However, the excess SC content in the composite membrane exhibited the low physical properties, caused by negligible dispersion on the surface membrane. With the optimum 2.0 wt% SC in PEBAX/PEGDA, the porosity, contact angle and electrolyte uptake capacity was found to be 64.0 %, 12.8° and 37.5 %, respectively. 2.0 wt% SC/PEBAX/PEGDA showed the outstanding thermal stability with negligible shrinkage <10 % at 150 °C whereas pristine PEBAX/PEGDA showed the shrinkage of 29 %. The obtained SC/PEBAX/PEGDA composite membrane is considered as a potential candidate to replace the commercial polyolefin-based separator in lithium-ion batteries.
通过两步法成功制备了磺化纤维素(SC),该方法包括对从甘蔗渣中提取的微晶纤维素进行γ辐射,随后用焦亚硫酸钾进行磺化。γ辐射剂量对纤维素的影响表现为氧化程度增加,这通过傅里叶变换红外光谱(FTIR)分析中I(羰基)/I(脂肪族)的强度比得到证实。将所得的SC作为增强剂和亲水性填料引入聚醚嵌段酰胺/聚乙二醇二丙烯酸酯(PEBAX/PEGDA)聚合物基体中,以提高其复合膜的电解质亲和力和热稳定性。与原始复合膜相比,PEBAX/PEGDA复合膜中SC含量的增加导致亲水性、电解质吸收量和热稳定性增强。然而,复合膜中过量的SC含量表现出较低的物理性能,这是由于其在膜表面的分散性可忽略不计所致。在PEBAX/PEGDA中SC的最佳含量为2.0 wt%时,发现孔隙率、接触角和电解质吸收容量分别为64.0%、12.8°和37.5%。2.0 wt% SC/PEBAX/PEGDA在150°C时表现出出色的热稳定性,收缩率可忽略不计<10%,而原始的PEBAX/PEGDA收缩率为29%。所获得的SC/PEBAX/PEGDA复合膜被认为是锂离子电池中替代商用聚烯烃基隔膜的潜在候选材料。