Energy Storage Properties and Mechanical Strengths of 3D Printed Porous Concrete Structural Supercapacitors Reinforced by Electrodes Made of Carbon-Black-Coated Ni Foam (2025-01)¶
10.1016/j.cemconcomp.2025.105926
, Wang Yalun, Chen Dongjian, Liu Shiyuan, Mbabazi Justin, Zhu Pinghua, Lu Jiquan, Wang Shaowei, Yin Fengxiang
Journal Article - Cement and Concrete Composites, Vol. 157, No. 105926
Abstract
To increase the manufacturing efficiency of rechargeable concrete which can alleviate the problem that intermittent new energy is difficult to integrate into the power grid, a new type of concrete structural supercapacitor (CSSC) was proposed here by using mortar-extrusion 3D printing with the carbon-black-coated Ni foam being the electrodes and reinforcement. The printability, energy storage properties, mechanical strengths, and microstructures of the printed CSSC were investigated and analyzed. Results showed adding electrodes increased the buildability because the Ni foam provided more supportiveness for the mortar. However, too many electrodes, especially for thicker ones, would damage the buildability, because thicker electrodes hindered mortar extrusion. The energy storage properties, i.e., the maximum areal capacitance and ionic conductivity of the printed CSSC are 1.59 mF/cm2 and 7.2 mS/cm, respectively, which can be increased by using more conductive electrolytes. Furthermore, adding carbon black to the electrodes or increasing the thickness of the electrodes enhanced the areal capacitance and ionic conductivity, because these methods increased the contact area of electrons and ions. The maximum compressive strength and flexural strength of the printed CSSC are 32.5 MPa and 12.9 MPa, respectively, which benefited from better printability and reinforcement. However, more thicker electrodes would over-reinforce the concrete. Moreover, the carbon black reduced the bonding between the printing mortar and Ni foam, resulting in decreased mechanical strength of the printed CSSC. This study provides an efficient method to manufacture the CSSC, and insights into the properties of the printed CSSC, which may facilitate future CSSC applications.
¶
32 References
- Beersaerts Glenn, Soete Jeroen, Giels Michiel, Eykens Lies et al. (2023-09)
3D Printing of an Iron-Rich Slag-Based Hybrid Mortar:
A Durable, Sustainable and Cost-Competitive Product? - Cao Xiangpeng, Yu Shiheng, Wu Shuoli, Cui Hongzhi (2022-11)
Experimental Study of Hybrid Manufacture of Printing and Cast-in-Process to Reinforce 3D Printed Concrete - Chen Anguo, Dai Pengfei, Lyu Qifeng (2024-05)
Effect of Alkalized Straw-Fibers on the Properties of Three Dimensional Printed Cementitious Composite - Chen Yuning, Xia Kailun, Jia Zijian, Gao Yueyi et al. (2023-10)
Extending Applicability of 3D Printable Geopolymer to Large-Scale Printing Scenario via Combination of Sodium Carbonate and Nano-Silica - Dai Pengfei, Lyu Qifeng, Zong Meirong, Zhu Pinghua (2024-01)
Effect of Waste-Plastic-Fibers on the Printability and Mechanical Properties of 3D Printed Cement Mortar - Gomaa Mohamed, Jabi Wassim, Soebarto Veronica, Xie Yi (2022-01)
Digital Manufacturing for Earth Construction:
A Critical Review - Gu Yucun, Zheng Shuyi, Ma Hongyan, Long Wujian et al. (2024-05)
Effect of Absorption Kinetics of Superabsorbent Polymers on Printability and Inter-Layer Bond of 3D Printing Concrete - Hou Shaodan, Xiao Jianzhuang, Duan Zhenhua, Ma Guowei (2021-10)
Fresh Properties of 3D Printed Mortar with Recycled Powder - Kan Deyuan, Liu Guifeng, Cao Shuang, Chen Zhengfa et al. (2022-11)
Mechanical Properties and Pore-Structure of Multi-Walled Carbon-Nano-Tube-Reinforced Reactive Powder-Concrete for Three-Dimensional Printing Manufactured by Material-Extrusion - Khoshnevis Behrokh, Dutton Rosanne (1998-01)
Innovative Rapid Prototyping Process Makes Large-Sized, Smooth-Surfaced Complex Shapes in a Wide Variety of Materials - Kreiger Eric, Kreiger Megan, Case Michael (2019-04)
Development of the Construction Processes for Reinforced Additively Constructed Concrete - Li Zhijian, Wang Li, Ma Guowei (2020-01)
Mechanical Improvement of Continuous Steel-Micro-Cable-Reinforced Geopolymer Composites for 3D Printing Subjected to Different Loading Conditions - Liu Chao, Wang Xianggang, Chen Yuning, Zhang Chao et al. (2021-06)
Influence of Hydroxypropyl-Methylcellulose and Silica-Fume on Stability, Rheological Properties, and Printability of 3D Printing Foam-Concrete - Liu Miao, Zhang Qiyun, Tan Zhendong, Wang Li et al. (2021-01)
Investigation of Steel-Wire-Mesh-Reinforcement Method for 3D Concrete Printing - Lowke Dirk, Dini Enrico, Perrot Arnaud, Weger Daniel et al. (2018-07)
Particle-Bed 3D Printing in Concrete Construction:
Possibilities and Challenges - Lyu Qifeng, Dai Pengfei, Chen Anguo (2023-05)
Sandwich-Structured Porous Concrete Manufactured by Mortar-Extrusion and Aggregate-Bed 3D Printing - Lyu Qifeng, Dai Pengfei, Chen Anguo (2023-10)
Mechanical Strengths and Optical Properties of Translucent Concrete Manufactured by Mortar-Extrusion 3D Printing with Polymethyl-Methacrylate Fibers - Lyu Qifeng, Dai Pengfei, Zong Meirong, Zhu Pinghua et al. (2023-10)
Plant-Germination Ability and Mechanical Strength of 3D Printed Vegetation Concrete Bound with Cement and Soil - Lyu Qifeng, Wang Yalun, Dai Pengfei (2024-05)
Multilayered Plant-Growing Concrete Manufactured by Aggregate-Bed 3D Concrete Printing - Ma Guowei, Hu Tingyu, Wang Fang, Liu Xiongfei et al. (2023-02)
Magnesium Phosphate Cement for Powder-Based 3D Concrete Printing:
Systematic Evaluation and Optimization of Printability and Printing Quality - Marchment Taylor, Sanjayan Jay (2019-10)
Mesh Reinforcing Method for 3D Concrete Printing - Mechtcherine Viktor, Buswell Richard, Kloft Harald, Bos Freek et al. (2021-02)
Integrating Reinforcement in Digital Fabrication with Concrete:
A Review and Classification Framework - Pegna Joseph (1997-02)
Exploratory Investigation of Solid Freeform Construction - Perrot Arnaud, Jacquet Yohan, Rangeard Damien, Courteille Eric et al. (2020-03)
Nailing of Layers:
A Promising Way to Reinforce Concrete 3D Printing Structures - Salet Theo, Ahmed Zeeshan, Bos Freek, Laagland Hans (2018-05)
Design of a 3D Printed Concrete Bridge by Testing - Wang Li, Ma Guowei, Liu Tianhao, Buswell Richard et al. (2021-07)
Inter-Layer Reinforcement of 3D Printed Concrete by the In-Process Deposition of U-Nails - Wang Qiang, Yang Wenwei, Wang Li, Zhang Dan et al. (2024-09)
Flexural Performance of the Integrated Steel-Truss-Reinforced 3D Printed Concrete Beams:
Experimental and Numerical Analysis - Xiao Jianzhuang, Ji Guangchao, Zhang Yamei, Ma Guowei et al. (2021-06)
Large-Scale 3D Printing Concrete Technology:
Current Status and Future Opportunities - Yu Shiwei, Du Hongjian, Sanjayan Jay (2020-07)
Aggregate-Bed 3D Concrete Printing with Cement-Paste Binder - Yu Shiwei, Sanjayan Jay, Du Hongjian (2022-07)
Effects of Cement Mortar Characteristics on Aggregate-Bed 3D Concrete Printing - Zhang Nan, Sanjayan Jay (2023-01)
Extrusion Nozzle Design and Print Parameter Selections for 3D Concrete Printing - Zhou Wen, Zhu He, Hu Wei-Hsiu, Wollaston Ryan et al. (2024-02)
Low-Carbon, Expansive Engineered Cementitious Composites (ECC) In the Context of 3D Printing
2 Citations
BibTeX
@article{lyu_wang_chen_liu.2025.ESPaMSo3PPCSSRbEMoCBCNF,
author = "Qifeng Lyu and Yalun Wang and Dongjian Chen and Shiyuan Liu and Justin Mbabazi and Pinghua Zhu and Jiquan Lu and Shaowei Wang and Fengxiang Yin",
title = "Energy Storage Properties and Mechanical Strengths of 3D Printed Porous Concrete Structural Supercapacitors Reinforced by Electrodes Made of Carbon-Black-Coated Ni Foam",
doi = "10.1016/j.cemconcomp.2025.105926",
year = "2025",
journal = "Cement and Concrete Composites",
volume = "157",
pages = "105926",
}
Formatted Citation
Q. Lyu, “Energy Storage Properties and Mechanical Strengths of 3D Printed Porous Concrete Structural Supercapacitors Reinforced by Electrodes Made of Carbon-Black-Coated Ni Foam”, Cement and Concrete Composites, vol. 157, p. 105926, 2025, doi: 10.1016/j.cemconcomp.2025.105926.
Lyu, Qifeng, Yalun Wang, Dongjian Chen, Shiyuan Liu, Justin Mbabazi, Pinghua Zhu, Jiquan Lu, Shaowei Wang, and Fengxiang Yin. “Energy Storage Properties and Mechanical Strengths of 3D Printed Porous Concrete Structural Supercapacitors Reinforced by Electrodes Made of Carbon-Black-Coated Ni Foam”. Cement and Concrete Composites 157 (2025): 105926. https://doi.org/10.1016/j.cemconcomp.2025.105926.