Lu Dong, Ma Lai-Peng, Zhong Jing, Tong Jinmeng, Liu Zhibo, Ren Wencai, Cheng Hui-Ming
Key Lab of Structures Dynamic Behavior and Control of the Ministry of Education (Harbin Institute of Technology), Harbin150090, People's Republic of China.
School of Civil Engineering, Harbin Institute of Technology, Harbin150090, People's Republic of China.
ACS Nano. 2023 Feb 28;17(4):3587-3597. doi: 10.1021/acsnano.2c10141. Epub 2023 Feb 6.
Highly conductive concrete/mortar has been long pursued to realize structural health monitoring in the development of smart-cement-based facilities. However, it remains challenging to significantly increase the electrical conductivity of concrete/mortar without lowering the compressive strength and flowability. Here, nanocrystalline-graphene-coated aggregates (termed Gr@AGs) are synthesized to break this conductivity-strength tradeoff. Admixing Gr@AGs with cement enables the construction of a conductive network of graphene that simultaneously strengthens the interfacial transition zone between aggregates and paste. As a result, high conductivity and improved mechanical properties have been simultaneously realized in Gr@AGs-based smart mortars. The significant positive effects of Gr@AGs are further enhanced by combining them with a low percentage of carbon fiber. Typically, the 28-day compressive/flexural strength of the optimized mortar increases by 12.2%/19.4%, with the electrical resistivity reduced by over 3 orders of magnitude from ∼4.6 × 10 to 182 Ω cm. On this basis, we demonstrate high-sensitivity cement-based piezoresistive sensors with a fractional change in resistivity as high as ∼25%, which is more than 1 order of magnitude higher than those reported in comparable systems. This study provides a solution to the critical issues in developing smart cementitious composites by taking full advantage of graphene's properties.
在智能水泥基设施的发展过程中,高导电混凝土/砂浆一直是实现结构健康监测所追求的目标。然而,在不降低抗压强度和流动性的情况下显著提高混凝土/砂浆的电导率仍然具有挑战性。在此,合成了纳米晶石墨烯包覆骨料(称为Gr@AGs)以打破这种电导率与强度之间的权衡。将Gr@AGs与水泥混合能够构建石墨烯导电网络,同时增强骨料与浆体之间的界面过渡区。结果,基于Gr@AGs的智能砂浆同时实现了高导电性和改善的力学性能。通过将Gr@AGs与低比例的碳纤维相结合,其显著的积极效果得到进一步增强。通常,优化后砂浆的28天抗压/抗折强度分别提高了12.2%/19.4%,电阻率从约4.6×10降至182Ω·cm,降低了3个数量级以上。在此基础上,我们展示了基于水泥的高灵敏度压阻式传感器,其电阻率的分数变化高达约25%,比同类系统中报道的高出1个数量级以上。本研究通过充分利用石墨烯的特性,为开发智能水泥基复合材料中的关键问题提供了一种解决方案。