石墨烯增强地聚合物复合材料的电性能研究

R. Krishna, Suman Saha, K. Korniejenko, T. Qureshi, S. Mustakim
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引用次数: 1

摘要

地聚合物复合材料为建筑行业提供了水泥基复合材料的环保替代品。由于其独特的材料组成,地聚合物也表现出导电特性,这使得它们可以作为功能材料应用。目前的工作旨在研究粉煤灰基地聚合物复合材料的独特电学性能。不同剂量的氧化石墨烯(即0、0.1、0.2、0.3、0.4%(按粘结剂的重量))被引入地聚合物基体以增强导电性。虽然氧化石墨烯(氧化石墨烯)的导电性通常较差,但在地聚合过程中,氧化石墨烯片与碱性溶液的相互作用减少了官能团,并产生了交联的氧化石墨烯(还原氧化石墨烯)片,具有更高的机械和导电性。在101 ~ 105 Hz的频率范围内,采用固态阻抗谱法对地聚合物复合材料的电性能进行了表征,包括阻抗、电导率和介电性能等参数。电性能与氧化石墨烯增强之间的关系可以有效地建立地聚合物复合材料作为具有理想功能的智能材料的发展。结果表明,石墨烯增强粉煤灰基地聚合物复合材料的电导率可有效提高到7.72 × 10−13 Ω·mm−1,并提高了介电响应性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Investigation of the Electrical Properties of Graphene-Reinforced Geopolymer Composites
Geopolymer composites provide an environmentally friendly alternative to cement-based composites in the construction industry. Due to their distinctive material composition, geopolymers also exhibit electrically conductive properties, which permit their application as a functional material. The current work aims to study the distinctive electrical properties of fly-ash-based geopolymer composites. Varying dosages of graphene oxide (i.e., 0, 0.1, 0.2, 0.3, 0.4% (by wt. of binder)) were introduced into the geopolymer matrix to enhance electrical conductivity. While GO (graphene oxide) is typically less conductive, the interaction of GO sheets with the alkaline solution during geopolymerisation reduced the functional groups and produced cross-linked rGO (reduced graphene oxide) sheets with increased mechanical and electrical conductivity properties. Solid-state impedance spectroscopy was used to characterize the electrical properties of geopolymer composites in terms of several parameters, such as impedance, electrical conductivity and dielectric properties, within the frequency ranging from 101 to 105 Hz. The relationship between the electrical properties and graphene oxide reinforcement can effectively establish geopolymer composite development as smart materials with desirable functionality. The results suggest an effective enhancement in electrical conductivity of up to 7.72 × 10−13 Ω·mm−1 and the dielectric response performance of graphene-reinforced fly-ash-based geopolymer composites.
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