Liu Xiaoyan, Guo Xiangwei, Zuo Junqing, Liu Aihua, Li Haifeng, Fu Feng, Wang Gangao, Hu Qianwen, Shah Surendra P
College of Civil and Transportation Engineering, Hohai University, Nanjing 210098, China.
College of Material Science and Engineering, Hohai University, Changzhou, 213000, China.
Nanomaterials (Basel). 2025 May 29;15(11):823. doi: 10.3390/nano15110823.
Smart cement-based materials have the potential to monitor the health of structures. The performances of composites with various kinds of conductive fillers have been found to be sensitive and stable. However, poor dispersion of conductive fillers limits their application. This study adopted the coupling agent method to attach carbon nanotubes (CNTs) onto the surface of carbon fibers (CFs). The CNT-grafted CFs (CNT-CFs) were adopted as conductive fillers to develop a CNT-CF-incorporated cementitious composite (CNT-CF/CC). The feasibility of this approach was demonstrated through Scanning Electron Microscopy (SEM) analysis and X-ray Photoelectron Spectroscopy (XPS) analysis. The CNT-CF/CC exhibited excellent conductivity because of the introduction of CNTs compared with the CF-incorporated cementitious composite (CF/CC). The CNT-CF/CC reflected huge responses under different temperatures and moisture contents. Even under conditions of high humidity or elevated temperatures, the CNT-CF/CC demonstrated stable performance and exhibited a broad measurement range. The introduction of CNT-CFs also enhanced the mechanical properties of the composite, displaying superior piezoresistivity. The failure load for the CNT-CF/CC reached 25 kN and the maximum FCR was 24.77%. In the cyclic loading, the maximum FCR reached 20.03% when subjected to peak cyclic load at 45% of the failure load. The additional conductive pathways introduced by CNTs enhanced the conductivity and sensitivity of the composite. And the anchoring connection between CNT-CFs and the cement matrix has been identified as a primary factor enhancing the stability in performance.
智能水泥基材料具有监测结构健康状况的潜力。已发现含有各种导电填料的复合材料的性能灵敏且稳定。然而,导电填料的分散性差限制了它们的应用。本研究采用偶联剂法将碳纳米管(CNTs)附着在碳纤维(CFs)表面。采用接枝了CNT的CFs(CNT-CFs)作为导电填料来制备一种掺入CNT-CF的水泥基复合材料(CNT-CF/CC)。通过扫描电子显微镜(SEM)分析和X射线光电子能谱(XPS)分析证明了该方法的可行性。与掺入CF的水泥基复合材料(CF/CC)相比,由于引入了CNTs,CNT-CF/CC表现出优异的导电性。CNT-CF/CC在不同温度和湿度条件下呈现出巨大的响应。即使在高湿度或高温条件下,CNT-CF/CC也表现出稳定的性能且具有较宽的测量范围。引入CNT-CFs还增强了复合材料的力学性能,显示出优异的压阻特性。CNT-CF/CC的破坏载荷达到25 kN,最大压阻系数(FCR)为24.77%。在循环加载中,当承受45%破坏载荷的峰值循环载荷时,最大FCR达到20.03%。CNTs引入的额外导电路径提高了复合材料的导电性和灵敏度。并且CNT-CFs与水泥基体之间的锚固连接被认为是增强性能稳定性的主要因素。