Monolithic 3D-Printed Interdigitated Cement-Based Supercapacitors for Structural Energy Storage

材料科学 超级电容器 功率密度 电极 电容 储能 电解质 光电子学 分离器(采油) 制作 纳米技术 电化学 分层(地质) 复合材料 纳米线 多孔性 电流密度 导电体 抗压强度 胶凝的 陶瓷 集电器 介电谱
作者
Haiping Wu,Jing Zhong,Wencai Ren
出处
期刊:ACS Nano [American Chemical Society]
卷期号:20 (34): 24078-24090
标识
DOI:10.1021/acsnano.6c09927
摘要

Multifunctional building materials that can simultaneously bear load and store electrical energy could expand the role of civil infrastructure, yet the scalable fabrication of architected cement-based energy-storage devices remains challenging. The poor mechanical properties at the interface between the electrode and the separator, as well as the inefficient ion transport due to the long path in the thickness direction, remain challenging. Here, monolithic interdigitated cement-based supercapacitors were fabricated by direct ink writing using a cement-based separator and printable cement-based nanocarbon electrode inks. This design effectively avoids the electrochemical performance degradation typically associated with increased thickness by reconfiguring the ion-transport pathways. The monolithic structure seamlessly embeds the cement-based electrodes within a cement mortar separator, eliminating interfacial delamination risks. More importantly, the interdigitated pattern transforms the long through-thickness ion path into a much shorter in-plane pathway between adjacent electrodes, while simultaneously increasing the active electrode-electrolyte contact area. The optimized device delivered an areal capacitance of 162.14 mF cm-2 at 0.46 mA cm-2, an areal energy density of 22.52 μWh cm-2, and a power density of 0.49 mW cm-2 over a 1.0 V operating window. The cement-based device also maintained a compressive strength of 23.00 MPa, demonstrating simultaneous electrochemical and structural functionality. Short-term temperature tests showed stable operation under moderate heating and cooling, whereas performance decreased sharply at -18 °C, indicating that electrolyte freezing and moisture management remain key challenges. These findings demonstrate the feasibility of integrating electrochemical energy storage with load-bearing cementitious components.
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