Carbon Dots-Mediated Assembly of MnO2/PANI Ternary Composites for High-Performance Asymmetric Supercapacitors

超级电容器 材料科学 电容 三元运算 复合数 电极 多孔性 导电体 纳米技术 功率密度 化学工程 碳纤维 电化学 电导率 复合材料 储能 双功能 比表面积 碳纳米管 电流密度 X射线光电子能谱 电池(电) 表面能
作者
Yuan-Zhuo Tan,Xin Tan,Hao-Miao Ma,Shan-Shan Li,王思宇 WANG Si-yu,Rui-Zhe Ma,Yuan‐Ru Guo
出处
期刊:ACS applied nano materials [American Chemical Society]
卷期号:9 (35): 16691-16702
标识
DOI:10.1021/acsanm.6c02397
摘要

Abstract Manganese dioxide (MnO2) has attracted considerable interest owing to its low cost and high theoretical capacitance. However, its poor electrical conductivity and limited long-term cycling stability severely impede practical applications. To overcome these drawbacks, we fabricated MnO2/PANI/CDs ternary composites using cellulose-derived carbon dots (CDs) as both a microstructural regulator and a conductive promoter via a two-step CDs-assisted strategy. In the first step, CDs were employed to direct the growth of MnO2, yielding a porous microstructure. This porous architecture enhances interfacial bonding with the subsequently introduced PANI, thereby facilitating the formation of the MnO2/PANI binary composite. In the second step, supplementary CDs were further introduced onto the surface of the MnO2/PANI, affording the final ternary MnO2/PANI/CDs composite. The sp2-hybridized CDs not only establish intimate π–π interactions with PANI chains but also reinforce interfacial adhesion with both PANI and MnO2 through their oxygen-rich surface functional groups. Consequently, they serve as conductive bridges and proton donors, markedly improving the overall electrochemical performance of the composite. Systematic SEM, TEM, FT-IR, and XPS characterizations verify the successful construction of an architecture with fully integrated components. The composite delivers an optimal specific capacitance of 526.1 F g–1 and retains 77.5% of its initial capacitance after 5000 cycles. An all-solid-state asymmetric supercapacitor assembled with MnO2/PANI/CDs delivers a specific capacitance of 160.4 F g–1 and achieves an energy density of 48.4 Wh kg–1 at a power density of 750 W kg–1. This strategy highlights the significant potential of MnO2/PANI/CDs as an advanced electrode for high-performance energy storage devices.
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