Integrated Intelligent Energy ›› 2026, Vol. 48 ›› Issue (6): 16-33.doi: 10.3969/j.issn.2097-0706.2026.06.002
• Thermal Energy Storage Material and Technology • Previous Articles Next Articles
SHI Chuanqi(
), XIONG Yaxuan*(
), HAN Chaoran(
), ZHENG Hao(
)
Received:2026-03-23
Revised:2026-04-17
Published:2026-06-05
Contact:
XIONG Yaxuan
E-mail:shichuanqi2025@126.com;xiongyaxuan@bucea.edu.cn;18519510711@163.com;3343502251@qq.com
Supported by:CLC Number:
SHI Chuanqi, XIONG Yaxuan, HAN Chaoran, ZHENG Hao. Research progress on concrete-based energy storage batteries[J]. Integrated Intelligent Energy, 2026, 48(6): 16-33.
Add to citation manager EndNote|Ris|BibTeX
URL: https://www.hdpower.net/EN/10.3969/j.issn.2097-0706.2026.06.002
| [1] |
LIN X, WANG X J, SONG J, et al. Electrochemical performance evolution of carbon-cement supercapacitors under the synergistic regulation of conductive networks and pore structures[J]. Journal of Energy Storage, 2026, 152: 120826.
doi: 10.1016/j.est.2026.120826 |
| [2] |
HERODOTOU P, HAO R, E․GEORGHIOU G, et al. Rechargeable magnesium batteries:System-level opportunities and challenges for battery energy storage applications[J]. Electrochimica Acta, 2026, 555: 148315.
doi: 10.1016/j.electacta.2026.148315 |
| [3] |
OUMER A, ADEM J K, KIM G M, et al. Advanced energy storage systems in construction materials: A comprehensive review of cementitious-based batteries and supercapacitors[J]. Journal of Building Engineering, 2025, 106: 112553.
doi: 10.1016/j.jobe.2025.112553 |
| [4] |
CHENG J X, GU G H, ZHENG M K, et al. Carbon black and alkali-activated slag composites for structural supercapacitors[J]. Construction and Building Materials, 2025, 491: 142768.
doi: 10.1016/j.conbuildmat.2025.142768 |
| [5] | CHANUT N, STEFANIUK D, WEAVER J C, et al. Carbon-cement supercapacitors as a scalable bulk energy storage solution[J]. Proceedings of the National Academy of Sciences of the United States of America, 2023, 120(32): e2304318120. |
| [6] |
LUO Q, LI Z M, LI Y X, et al. Living microbial cement supercapacitors with reactivatable energy storage[J]. Cell Reports Physical Science, 2025, 6(9):102810.
doi: 10.1016/j.xcrp.2025.102810 |
| [7] |
SOLIMAN N, IOANNIDOU K, DIVOUX T, et al. Nano-carbon black(nCB)-dispersed cement composites: A macro-to-nano investigation revealing trade-offs between electrical conductivity and mechanical strength[J]. Construction and Building Materials, 2025, 489: 142246.
doi: 10.1016/j.conbuildmat.2025.142246 |
| [8] | 乔雪, 杨雪彪, 黄婷婷, 等. 纳米锗-锡/碳复合材料的合成与电化学性能研究[J]. 华电技术, 2021, 43(7):24-29. |
| QIAO Xue, YANG Xuebiao, HUANG Tingting, et al. Synthesis and electrochemical performance of nano-Ge-Sn/C composite material[J]. Huadian Technology, 2021, 43(7):24-29. | |
| [9] |
MAO J X, YE S H, WANG S X, et al. Cement-based structural supercapacitors with structural optimization and conductive fiber reinforcement[J]. Journal of Power Sources, 2025, 657: 238127.
doi: 10.1016/j.jpowsour.2025.238127 |
| [10] |
SUN Y Y, SONG J S, QI G S, et al. Pore-engineered functional membranes toward dendrite-free metal-based secondary batteries[J]. Journal of Energy Storage, 2026, 146: 120020.
doi: 10.1016/j.est.2025.120020 |
| [11] |
YAN D M, MAO J X, GAO R F, et al. Improving the electrochemical performance of cement-based supercapacitors through microstructure optimization[J]. Journal of Energy Storage, 2024, 96: 112717.
doi: 10.1016/j.est.2024.112717 |
| [12] |
MUHAMMAD SAQIB Q, MANNAN A, NOMAN M, et al. Miniaturizing power: Hharnessing micro-supercapacitors for advanced micro-electronics[J]. Chemical Engineering Journal, 2024, 490: 151857.
doi: 10.1016/j.cej.2024.151857 |
| [13] |
周舒心, 范怀林, 胡勋. 生物质基碳材料制备及其在超级电容器电极材料中的应用[J]. 综合智慧能源, 2023, 45(5): 1-12.
doi: 10.3969/j.issn.2097-0706.2023.05.001 |
|
ZHOU Shuxin, FAN Huailin, HU Xun. Preparation of biomass-based carbon materials and its application as electrodes in supercapacitors[J]. Integrated Intelligent Energy, 2023, 45(5): 1-12.
doi: 10.3969/j.issn.2097-0706.2023.05.001 |
|
| [14] |
XU T, JIAO F, CHEN F, et al. Regulating lithium dendritic evolution at interface by thermal management for ultrafast charging lithium-ion battery[J]. International Journal of Thermal Sciences, 2026, 225:110737.
doi: 10.1016/j.ijthermalsci.2026.110737 |
| [15] |
KIM J, WOO M, REHMAN F U, et al. Hybrid electrolytes based on lithium silicate and polyethylene oxide for all-solid-state lithium metal batteries with improved lithium ion transport[J]. Journal of Energy Storage, 2026, 151: 120630.
doi: 10.1016/j.est.2026.120630 |
| [16] |
ZHANG E Q, TANG L P. Rechargeable concrete battery[J]. Buildings, 2021, 11(3): 103.
doi: 10.3390/buildings11030103 |
| [17] | STEFANIUK D, WEAVER J C, et al. High energy density carbon-cement supercapacitors for architectural energy storage[J]. Proceedings of the National Academy of Sciences of the United States of America, 2025, 122(40): e2511912122. |
| [18] | MING N N, XU J K, LEI J F, et al. Armoring hydrophilic wood-structured ultrathick electrode with bimetallic nitride enables high energy-density supercapacitor[J]. Green Energy & Environment, 2025, 10(2): 345-357. |
| [19] |
ZHU J H, WANG X F, YU H T, et al. Advanced industria-grade carbon-fiber-reinforced geopolymer cement supercapacitors for building-integrated energy storage solutions[J]. Cement and Concrete Composites, 2025, 161: 106106.
doi: 10.1016/j.cemconcomp.2025.106106 |
| [20] |
HE Y P, ZHANG M X, LI W W, et al. Electric heating curing regimes of temperature self-controlled concrete with nano-carbon black for performance improvement in cold regions[J]. Cement and Concrete Composites, 2024, 152: 105689.
doi: 10.1016/j.cemconcomp.2024.105689 |
| [21] | 刘改改, 檀玉. 氧化镍/二氧化锰改性碳材料用作超级电容器电极的制备与性能研究[J]. 山东化工, 2025, 54(18): 21-25. |
| LIU Gaigai, TAN Yu. Preparation and performance study of nickel oxide/manganese dioxide modified carbon materials as electrodes for supercapacitors[J]. Shandong Chemical Industry, 2025, 54(18): 21-25. | |
| [22] |
JIAO P X, FANG C Q, ZHANG D. In-situ polymerized polyacrylamide/magnesium phosphate cement electrolyte for structural supercapacitor[J]. Journal of Energy Storage, 2022, 55: 105416.
doi: 10.1016/j.est.2022.105416 |
| [23] |
LYU Q F, WANG Y L, CHEN D J, et al. Energy storage properties and mechanical strengths of 3D printed porous concrete structural supercapacitors reinforced by electrodes made of carbon-black-coated Ni foam[J]. Cement and Concrete Composites, 2025, 157: 105926.
doi: 10.1016/j.cemconcomp.2025.105926 |
| [24] |
FENG P, LIU Z L, YUAN L, et al. Concrete: From infrastructure to structural energy storage[J]. Materials Today, 2025, 91: 364-374.
doi: 10.1016/j.mattod.2025.10.016 |
| [25] | 秦英, 姚焯, 郑丽君, 等. 柔性超级电容器硫掺杂石墨烯/导电聚合物复合电极材料的制备及性能研究[J]. 无机材料学报, 2026, 41(5):604-612. |
|
QIN Ying, YAO Zhuo, ZHENG Lijun, et al. Sulfur-doped graphene/conductive polymer composites: Preparation and performance as electrode of flexible supercapacitor[J]. Journal of Inorganic Materials, 2026, 41(5):604-612.
doi: 10.15541/jim20250375 |
|
| [26] |
ZHAO C Y, DONG W K, INDRA MAHLIA T M, et al. Enhancing energy storage capability for renewable energy systems through advanced cement-based supercapacitors[J]. Energy and Buildings, 2025, 338: 115732.
doi: 10.1016/j.enbuild.2025.115732 |
| [27] |
ZHANG Y Y, ZHANG D. Polymer/cement composite electrolyte with high strength and high ionic conductivity for structural supercapacitors[J]. Cement and Concrete Composites, 2024, 149: 105512.
doi: 10.1016/j.cemconcomp.2024.105512 |
| [28] |
FANG C Q, ZHANG D. Portland cement electrolyte for structural supercapacitor in building application[J]. Construction and Building Materials, 2021, 285: 122897.
doi: 10.1016/j.conbuildmat.2021.122897 |
| [29] |
ZHANG Y Y, LI K B, ZHANG D. Redox polymer/cement electrolytes for structural supercapacitor with ultrahigh ionic conductivity and energy density[J]. Journal of Energy Storage, 2024, 94: 112444.
doi: 10.1016/j.est.2024.112444 |
| [30] |
TU J X, CHEN X X, XIONG X B, et al. Microwave hydrothermal electrodeposition of nickel carbonate hydroxide/cobalt hydroxide film on nickel foam for cement-based structural supercapacitors[J]. Materials Today Chemistry, 2023, 28: 101365.
doi: 10.1016/j.mtchem.2022.101365 |
| [31] |
WANG J, ZHANG D. Structural supercapacitor constructed by SnO2/graphene coated nickel foam electrode and synchronously synthesized polymer cement electrolyte at room temperature[J]. Materials Chemistry and Physics, 2022, 277: 125488.
doi: 10.1016/j.matchemphys.2021.125488 |
| [32] |
SHI M Y, WANG L, ZHANG D. Implementation of durable structural supercapacitors with molybdate- ion-intercalated NiCo-LDH and polymer-cement composite[J]. Composites Part B: Engineering, 2025, 295: 112209.
doi: 10.1016/j.compositesb.2025.112209 |
| [33] | LIU Q Y, WANG F J, ZHANG Y, et al. Structural cement-based supercapacitors with multifunctional robustness for energy storage[J]. Advanced Science, 2026, 13(2): 15769. |
| [34] |
WANG J, XU C, ZHANG D, et al. Porous polymer cement composites for quasi-solid graphene supercapacitors[J]. Journal of Energy Storage, 2023, 63: 106991.
doi: 10.1016/j.est.2023.106991 |
| [35] |
DONG W K, TANG J B, WANG K J, et al. Cement-based batteries for renewable and sustainable energy storage toward an energy-efficient future[J]. Energy, 2025, 315: 134382.
doi: 10.1016/j.energy.2025.134382 |
| [36] |
ZHAO C Y, DONG W K, PRABOWO J, et al. Development of cement-based supercapacitors enabled by graphitic carbon produced from methane pyrolysis[J]. Journal of Building Engineering, 2026, 117: 114846.
doi: 10.1016/j.jobe.2025.114846 |
| [37] |
FANG C Q, ZHANG D. High multifunctional performance structural supercapacitor with Polyethylene oxide cement electrolyte and reduced graphene oxide@CuCo2O4 nanowires[J]. Electrochimica Acta, 2022, 401: 139491.
doi: 10.1016/j.electacta.2021.139491 |
| [38] |
PRABIN A, SUDHAKAR Y N, VIJAYAN A. Streamlined electrochemical harvesting of cobalt and nickel from soft cemented carbide scrap for superior supercapacitors[J]. Electrochimica Acta, 2024, 497: 144588.
doi: 10.1016/j.electacta.2024.144588 |
| [39] |
LI P, LIU Q Y, JIANG J Y, et al. Capacitance and coulombic efficiency controlling of cement-based supercapacitors[J]. Journal of Energy Storage, 2025, 130: 117446.
doi: 10.1016/j.est.2025.117446 |
| [40] |
GUO H, GUO Y P, DU X Y, et al. Interconnected conductive networks in cement mortar enable high-performance structural supercapacitors[J]. Energy Storage Materials, 2025, 82: 104630.
doi: 10.1016/j.ensm.2025.104630 |
| [41] |
MENG X R, LIU Z Z, XIAO Y, et al. Foamed magnesium phosphate cement for high-performance structural supercapacitor electrolytes[J]. Construction and Building Materials, 2025, 493: 143153.
doi: 10.1016/j.conbuildmat.2025.143153 |
| [42] |
ZHAN P M, XU J, WANG J, et al. Structural supercapacitor electrolytes based on cementitious composites containing recycled steel slag and waste glass powders[J]. Cement and Concrete Composites, 2023, 137: 104924.
doi: 10.1016/j.cemconcomp.2022.104924 |
| [43] |
LIU R D, FENG P, LIU Z L, et al. An innovative structural energy storage solution using fly ash-cement composites for net-zero energy buildings[J]. Cement and Concrete Composites, 2025, 157: 105960.
doi: 10.1016/j.cemconcomp.2025.105960 |
| [44] |
SHI M Y, ZHANG D. Integrated construction improving electrochemical performance of loadable supercapacitors based on porous cement-based solid electrolytes[J]. Journal of Power Sources, 2024, 616: 235135.
doi: 10.1016/j.jpowsour.2024.235135 |
| [45] |
CHEN Y, LIU X H, MA X T, et al. Biomass-based 2D porous carbon with cross-linked nanosheets via co-hydrothermal pretreatment for high-performance supercapacitors[J]. Chemical Engineering Journal, 2025, 519: 165145.
doi: 10.1016/j.cej.2025.165145 |
| [46] |
HE Y P, LI M C, JIANG X W, et al. Collaborative electric heating and curing as a novel approach to improve the performance of adjacent heterogeneous concrete in natural low-temperature environments[J]. Construction and Building Materials, 2025, 501: 144294.
doi: 10.1016/j.conbuildmat.2025.144294 |
| [47] | 韩启. “超级充电宝”进化记[N]. 天津日报,2026-04-10(7). |
| [48] |
LIN W, XING J R, ZHOU Y, et al. A biomimetic cement-based solid-state electrolyte with both high strength and ionic conductivity for self-energy-storage buildings[J]. Research, 2024, 7: 379.
doi: 10.34133/research.0379 |
| [49] | MEHAR V, FROONINCKX N, ABRAM I, et al. Receiver-side power control of a 200 kW three-phase DWPT system for heavy-duty vehicles[C]// Proceedings of 2025 IEEE Wireless Power Technology Conference and Expo (WPTCE). IEEE, 2025: 1-6. |
| [1] | PENG Wenhe, CAI Ruitian, ZHANG Huaying, WANG Hualong, HUANG Huan, WU Yicong. Optimal scheduling of electric vehicles based on schedulable duration prediction [J]. Integrated Intelligent Energy, 2026, 48(4): 60-71. |
| [2] | TIAN Jinze, MENG Keqilao, JIA Dajiang, ZHANG Zhanqiang, ZHOU Ran, JIAN Chun. Analysis and optimal design of permanent magnet synchronous motors for compressed air energy storage [J]. Integrated Intelligent Energy, 2026, 48(5): 31-43. |
| [3] | MA Xudong, DU Yanjun, LI Bingqi, CUI Yin, ZHANG Cancan, WU Yuting. Thermodynamic analysis and performance enhancement of high-temperature heat pump coupled energy storage system [J]. Integrated Intelligent Energy, 2025, 47(12): 66-72. |
| [4] | WEN Xiankui, LI Yaqin, ZHANG Shihai, FAN Qiang, YE Huayang, XIE Yiying, LI Xinzhuo. Impact of expander automatic control on operational stability during AA-CAES startup process [J]. Integrated Intelligent Energy, 2025, 47(12): 81-88. |
| [5] | JIANG Jian, DU Dongsheng, SU Lin. Remaining useful life prediction of proton exchange membrane fuel cells based on improved HHO-LSTM-Self-Attention [J]. Integrated Intelligent Energy, 2025, 47(6): 47-56. |
| [6] | JIANG Zeling, XIONG Yaxuan, BAI Yinlei, GENG Bochen. Research progress in molten nitrate salts for thermal energy storage [J]. Integrated Intelligent Energy, 2025, 47(12): 14-24. |
| [7] | CHEN Xiaoqi, ZHANG Min, SUN Zhou, LIU Bin, MAO Yong, TAO Yongjin. Energy storage capacity configuration and scheduling optimization strategy for the expressway microgrids [J]. Integrated Intelligent Energy, 2025, 47(2): 29-40. |
| [8] | LIU Heng, YU Yang, LI Minghang, LIANG Meng, YAN Ting, ZHAO Dazhou. Research progress on specific heat capacity improvement of molten salt nanofluids [J]. Integrated Intelligent Energy, 2024, 46(12): 45-54. |
| [9] | HU Xueru, XING Lingli, LI Yuanyuan, SU Wen, LIU Pengfei, DING Ruochen, LIN Xinxing. Performance simulation and analysis of an isobaric compressed air energy storage system based on Aspen Plus [J]. Integrated Intelligent Energy, 2024, 46(12): 72-80. |
| [10] | HAO Ning, LI Zhenya, WANG Yuxuan, BIAN Wenjie. Simulation research of charging and discharging processes of compressed air storage based on salt caverns [J]. Integrated Intelligent Energy, 2024, 46(10): 73-81. |
| [11] | ZOU Fenghua, ZHU Xingyang, YIN Junping, MENG Shiyu, JIANG Haiyan, CHEN Aikang, LIU Lan. Development trend analysis on building energy systems under "dual carbon" target [J]. Integrated Intelligent Energy, 2024, 46(8): 36-40. |
| [12] | YANG Lei, WANG Rui, MA Lili, SUN Ning, LI Xuelian, CHEN Ting, WANG Shaorong, SHI Caixia. Research on Ca and Fe co-doped PrBaCo2O5+δ as a cathode material of solid oxide fuel cells [J]. Integrated Intelligent Energy, 2024, 46(7): 47-52. |
| [13] | HUANG Xiaofan, LI Jiarui, LIU Hui, TANG Xiaoping, WANG Ziyao, WANG Tong. Comprehensive benefit analysis on the cascade utilization of a power battery system [J]. Integrated Intelligent Energy, 2024, 46(7): 63-73. |
| [14] | MENG Qiang, TIAN Xi, XIONG Yaxuan. Study on preparation of shape-stable phase-change materials based on cellular concrete and their performances [J]. Integrated Intelligent Energy, 2024, 46(3): 29-34. |
| [15] | YUAN Shuguang, ZHANG Yuting, WANG Feng, YUAN Guangzhen. Business operation modes and risk analysis of large-scale energy storage in western Inner Mongolia [J]. Integrated Intelligent Energy, 2024, 46(3): 63-71. |
| Viewed | ||||||
|
Full text |
|
|||||
|
Abstract |
|
|||||

