首页> 外文期刊>Materials & design >The use of graphene oxide-embedded superporous poly(2-hydroxyethylmethacrylate) cryogels for p(aniline) conductive polymer synthesis and their use in sensor applications
【24h】

The use of graphene oxide-embedded superporous poly(2-hydroxyethylmethacrylate) cryogels for p(aniline) conductive polymer synthesis and their use in sensor applications

机译:嵌入氧化石墨烯的超多孔聚(甲基丙烯酸2-羟乙基酯)冰凝胶在对苯胺导电聚合物合成中的应用及其在传感器中的应用

获取原文
获取原文并翻译 | 示例
           

摘要

Poly(2-hydroxyethylmethacrylate)-graphene oxide (p(HEMA)-GO) cryogel composites were prepared by including GO during cryopolymerization. The GO within p(HEMA) cryogels was reduced by treating p(HEMA)GO cryogel composites with the aqueous solutions of hydriodic acid, hydrazine, ascorbic acid, tannic acid, and sodium borohydride. The changes in conductivities of p(HEMA)-GO and its reduced forms, p(HEMA)-r-GO cryogel composites, were compared. The conductivity of bare p(HEMA), and p(HEMA)-GO cryogel were almost the same at 1.03 x 10(-10) +/- 1.3 x 10(-11) and 1.08 x 10(-10) +/- 5.8 x 10(-12) S.cm(-1), respectively; whereas, upon reduction, the conductivity of p(HEMA)-r-GO cryogel composites increased to 4.80 x 10(-7) +/- 5.9 x 10(-8) S.cm(-1) (similar to 4000-fold increase). Moreover, upon in situ synthesis of conductive polyaniline (p(An)) within p(HEMA)-r-GO cryogel composites as p(HEMA)-r-GO/p(An) semi-interpenetrating polymer network (semi-IPN), the conductivity increased 250-fold more than p(HEMA)-r-GO composite, and 1 million-fold more than the bare p(HEMA) or p(HEMA)-GO cryogels with a conductivity value of 1.38 x 10(-4) +/- 2.5 x 10(-5) S.cm(-1). Furthermore, p(HEMA)-r-GO composite and p(HEMA)-r-GO/p (An) composite semi-IPN conductive cryogel systems were tested as sensor materials for HCl and NH3 gases. The conductivity of p(HEMA)-r-GO composite increased 3-fold upon 15 min HCl gas exposure, and decreased 4-fold after 15 min NH3 gas exposure. Also, the conductivity of p(HEMA)-r-GO/p(An) composite semi-IPN conductive cryogel systems were increased 2-fold and decreased 46-fold upon 15 min exposures to HCl and NH3 gas, respectively. (C) 2017 Elsevier Ltd. All rights reserved.
机译:聚(2-羟乙基丙烯酸甲酯)-氧化石墨烯(p(HEMA)-GO)冷冻凝胶复合材料是通过在冷冻聚合过程中加入GO制备的。通过用氢碘酸,肼,抗坏血酸,鞣酸和硼氢化钠的水溶液处理p(HEMA)GO冷冻凝胶复合材料,可以降低p(HEMA)冷冻凝胶中的GO。比较了p(HEMA)-GO及其还原形式p(HEMA)-r-GO冷冻凝胶复合材料电导率的变化。裸p(HEMA)和p(HEMA)-GO冷冻凝胶的电导率几乎相同,分别为1.03 x 10(-10)+/- 1.3 x 10(-11)和1.08 x 10(-10)+/-分别为5.8 x 10(-12)S.cm(-1);而在还原后,p(HEMA)-r-GO冷冻凝胶复合材料的电导率增加到4.80 x 10(-7)+/- 5.9 x 10(-8)S.cm(-1)(约4000倍增加)。此外,在p(HEMA)-r-GO冷冻凝胶复合材料中原位合成导电聚苯胺(p(An))作为p(HEMA)-r-GO / p(An)半互穿聚合物网络(semi-IPN) ,电导率比p(HEMA)-r-GO复合材料高250倍,比裸露的p(HEMA)或p(HEMA)-GO低温凝胶高100万倍,电导值为1.38 x 10(- 4)+/- 2.5 x 10(-5)平方厘米(-1)。此外,对p(HEMA)-r-GO复合材料和p(HEMA)-r-GO / p(An)复合半IPN导电冷冻凝胶体系进行了测试,以作为HCl和NH3气体的传感器材料。 p(HEMA)-r-GO复合材料的电导率在HCl气体暴露15分钟后增加了3倍,而在NH3气体暴露15分钟后则降低了4倍。同样,在暴露于HCl和NH3气体中15分钟后,p(HEMA)-r-GO / p(An)复合半IPN导电冷冻凝胶体系的电导率分别提高了2倍和46倍。 (C)2017 Elsevier Ltd.保留所有权利。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号