摘要
采用γ-缩水甘油醚氧丙基三甲氧基硅烷(KH560)对聚乙烯醇(PVA1799)进行接枝改性,制备了交联型聚乙烯醇表面施胶剂(PVA-KH560);通过傅里叶变换红外光谱、氢核磁共振谱及稳定性测试等对PVA-KH560结构及稳定性进行分析,并对PVA-KH560与PVA1799复配施胶前后纸张的物理性能进行了分析。结果表明,KH560中的环氧基团在PVA-KH560中消失,含硅支链成功接枝到PVA1799长链中;当m(PVA1799)∶m(KH560)=9∶1.5时,PVA-KH560稳定且粒径最小(122.2 nm),分散性指数为0.291;和原纸相比,复配施胶纸张耐折度、抗张指数、挺度、撕裂指数、耐破指数分别提高了436.0%、60.1%、116.4%、89.9%、80.5%,接触角增大了57.7%,综合性能优于单独使用PVA1799的施胶纸。
表面施胶对改善纸张表面性能及物理性能起着重要作
研究发
PVA1799,分析纯,上海影佳实业发展有限公司;KH560,分析纯,杭州康锦新材料科技有限公司;NaOH,分析纯,天津北方化玻销购中心;纯木浆特种纸,成都金鼎安全印制有限公司;实验室用水为去离子水。
VECTOR-22型傅里叶变换红外光谱仪(FT-IR)及AVANCE NEO 600MHz型核磁共振波谱仪
在温度90℃下,用去离子水溶解PVA1799 2 h,得到质量分数为10%的PVA1799溶液,降温至60℃后,逐滴滴加KH560,并用10%NaOH溶液调节反应体系pH值为7~8,然后在200 r/min下机械搅拌反应2 h,最终得到质量分数为10%的PVA-KH560,其合成路线图如

图1 PVA-KH560的合成路线
Fig. 1 Synthesis route of PVA-KH560
取1%(相对于绝干浆质量,下同)PVA-KH560与4%的PVA1799、1%的甘油进行复
分别参照GB/T 455—2002、GB/T 2679.3—1996、GB/T 457—2008、GB/T 12914—2018测定施胶前后纸张的撕裂度、挺度、耐折度及抗张强度。
在洁净的载玻片上粘贴导电胶带,取少量纸张均匀地粘贴在胶带表面,用镊子将表面刮平整,尽量避免有纤维翘起而影响测定。将制备好的样品移到原子力显微镜的载物台上,在室温、大气环境下观察纸张表面形态和测定表面粗糙度。
PVA1799、KH560及PVA-KH560的FT-IR谱图如

图2 PVA1799、 KH560及PVA-KH560的FT-IR谱图
Fig. 2 FT-IR spectra of PVA1799, KH560, and PVA-KH560
PVA-KH560

图3 PVA-KH560
Fig. 3
制备PVA1799与KH560质量比分别为9∶0.5、9∶1.0、9∶1.5、9∶2.0、9∶2.5的系列PVA-KH560,并稀释至质量分数为0.1%,然后测定PVA-KH560分散液粒径,结果如

图4 KH560用量对PVA-KH560粒径的影响
Fig. 4 Effect of KH560 dosage on particle size of PVA-KH560
通过TSI曲线分析KH560用量对PVA-KH560分散稳定性的影响,TSI越大,体系稳定性越差,结果如

图5 KH560用量对PVA-KH560稳定性的影响
Fig. 5 Effect of KH560 dosage on the stability of PVA-KH560
KH560用量对PVA-KH560外观以及稳定性的影响测定结果如
将PVA1799与KH-560质量比分别为9∶0.5、9∶1.0、 9∶1.5、 9∶2.0、 9∶2.5的PVA-KH560与一定量PVA1799复配,并用于木棉混浆纸张表面施胶,制得施胶纸样1~施胶纸样5(样品1~样品5),然后在110℃下干燥15 min,并测定施胶前后纸张的强度性能,结果如

图6 施胶前后纸样的强度性能对比
Fig. 6 Comparison of strength properties of papers before and after sizing
施胶前后纸张的接触角测定结果如

图7 施胶前后纸样的接触角
Fig. 7 Contact angle of papers before and after sizing
施胶前后纸样(PVA-KH560中PVA1799与KH560质量比为9∶1.5,下同)的SEM图如

图8 施胶前后纸张的SEM图
Fig. 8 SEM images of papers before and after sizing
施胶前后纸张的AFM图如

图9 施胶前后纸样的AFM图
Fig. 9 AFM images of papers before and after sizing
施胶前后纸张的TG分析结果如

图10 施胶前后纸张TG和DTG曲线
Fig. 10 TG and DTG curves of papers before and after sizing
采用γ-缩水甘油醚氧丙基三甲氧基硅烷(KH-560)对聚乙烯醇(PVA1799)进行接枝改性,制备了交联型聚乙烯醇表面施胶剂(PVA-KH560),探讨了PVA-KH560的稳定性,并将PVA-KH560与PVA1799复配用于纸张表面施胶。
3.1 傅里叶变换红外光谱(FI-TR)、氢核磁共振谱
3.2 将PVA-KH560与PVA1799复配成施胶液并用于纸张表面施胶。结果表明,PVA-KH560(9∶1.5)与PVA1799复配施胶可显著改善纸张物理性能,施胶后纸张的耐折度、抗张指数、挺度、撕裂指数、耐破指数分别为263次、96.2 N·m/g、71.0 mN、15.1 mN·
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