超级电容器
碳化
电解质
功率密度
材料科学
电极
储能
碳纤维
纳米技术
化学工程
电化学
化学
复合材料
功率(物理)
工程类
物理
复合数
热力学
物理化学
扫描电子显微镜
作者
Zhiwei Li,Yinghong Xu,Jiaxin Cui,Hui Dou,Xiaogang Zhang
标识
DOI:10.1016/j.jpowsour.2022.232386
摘要
High value-added utilization of ubiquitous low-grade heat shows great importance to energy regulation. liquid thermocell is considered as promising candidate for converting heat into electricity due to its high Seebeck coefficient and facile operation. However, the challenging integration of dozens of tiny devices is still required to generate a useful voltage, which greatly blocks the development of thermocells. Here, a well-defined nitrogen-doped hierarchical porous carbon (NHPC) obtained by self-template carbonization and alkaline activation is employed to construct high-performance zinc ion thermal charging supercapacitors (ZTSC) for the integration of energy conversion and storage. Significantly, continuous architecture of NHPC can enlarge the electrochemical active surface and shorten the diffusion pathways of electrolyte ions. Consequently, a high energy/power density of 71.8 Wh kg −1 /10.3 kW kg −1 can be achieved. Moreover, NHPC based ZTSC can output an attractive voltage of 1.16 V, a high thermopower of 31.4 mV K −1 , and a superior normalized power density of 15.3 mW m −2 K −2 with a temperature difference of 27 K. This work not only provides a facile strategy to prepare promising carbon materials, but also demonstrates the possibility of hybrid supercapacitors for heat-to-current conversion and storage. • A facile strategy is proposed to form N-doped hierarchical porous carbon (NHPC). • The NHPC shows high capacitance and good rate capability in energy storage. • A high-performance zinc thermal charging supercapacitor is constructed.
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