胶凝的
水泥
材料科学
电解质
储能
阴极
碱性电池
电化学
抗压强度
氢氧化物
电池(电)
能量密度
废物管理
耐久性
阳极
自行车
冶金
复合材料
环境科学
化学工程
硫酸盐
作者
Zhaolong Liu,Pan Feng,Long Yuan,Ruidan Liu,Xiangyu Meng,Guanghui Tao,Jian Chen,Zaiping Guo,Changwen Miao
标识
DOI:10.1007/s40820-026-02122-x
摘要
Abstract Integrating energy storage into buildings through cement-based structural batteries offers a transformative pathway toward net-zero energy infrastructure. However, current cementitious structural batteries remain hampered by low energy density and poor cycle stability, largely due to the presumed electrochemical inertness of cement and severe side reactions in the alkaline cementitious environment. Herein, we identify the unexplored role of cement as functional separators containing ZnSO 4 + MnSO 4 (Zn–Mn) electrolyte, which facilitates the MnO 2 deposition on cathode during charging and enhances capacity. Continuously generated zinc sulfate hydroxide within the cement matrix acts as a proton buffer, consuming H + generated during the electrochemical oxidation of Mn 2+ . This buffering prevents local acidification and sustains birnessite-MnO₂ deposition, typically hindered in conventional neutral Zn–Mn electrolytes. This discovery leads to the concept of active cementitious separators for fabricating Zn–Mn cement batteries that combine improved compressive strength (~ 20 MPa) with high specific energy density (0.92 mWh cm −2 at 1.15 mW cm −2 ) and excellent cycling stability (99.98% capacity retention after 1000 cycles). Our findings overturn the long-standing perception of cementitious materials as merely passive electrolyte carriers, demonstrating a ten-fold increase in both energy density and cycling stability over previous cement-based batteries.
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