He Nanfei, Liao Jinyun, Zhao Feng, Gao Wei
Department of Textile Engineering, Chemistry and Science, North Carolina State University, Raleigh, North Carolina 27606, United States.
Storagenergy Technologies, Inc., Salt Lake City, Utah 84120, United States.
ACS Appl Mater Interfaces. 2020 Apr 1;12(13):15211-15219. doi: 10.1021/acsami.0c00182. Epub 2020 Mar 19.
Pliable energy-storage devices have attracted great attention recently due to their important roles in rapid-growing wearable/implantable electronic systems among which yarn-shaped supercapacitors (YSCs) are promising candidates since they exhibit great design versatility with tunable sizes and shapes. However, existing challenges of YSCs include an inferior power output and poor performance consistency as compared to their planar counterparts, mainly due to their unique linear geometry and curved interfaces. Here, a YSC comprising wet-spun fibers of reduced graphene oxide and MXene sheets is demonstrated, which exhibits prominent decreases in the equivalent series resistance and thus increases in the power output upon increasing the length, which is contradictory to the common expectations of a typical YSC, showing revolutionary promises for practical applications. A much higher power density (2502.6 μW cm) can be achieved at an average energy density of 27.1 μWh cm (linearly, 510.9 μW cm at 5.5 μWh cm) via our unique dual-core design. The YSCs also present good stability upon stretching and bending, compatible with further textile processing. This work provides new insights into the fabrication of textile-based energy-storage devices for real-world applications.
由于其在快速发展的可穿戴/植入式电子系统中发挥的重要作用,柔性储能装置近来备受关注。其中,纱线状超级电容器(YSCs)是很有前景的候选者,因为它们在尺寸和形状可调方面展现出极大的设计通用性。然而,与平面型超级电容器相比,YSCs目前存在功率输出较低和性能一致性较差的问题,这主要归因于其独特的线性几何结构和弯曲界面。在此,展示了一种由还原氧化石墨烯和MXene片层的湿法纺丝纤维组成的YSC,其等效串联电阻显著降低,因此随着长度增加功率输出提高,这与典型YSC的普遍预期相反,显示出在实际应用中的革命性前景。通过我们独特的双核设计,在平均能量密度为27.1 μWh/cm²(线性关系下,在5.5 μWh/cm²时为510.9 μW/cm²)的情况下,可实现更高的功率密度(2502.6 μW/cm²)。这些YSCs在拉伸和弯曲时也具有良好的稳定性,与进一步的纺织加工兼容。这项工作为用于实际应用的基于纺织品的储能装置的制造提供了新的见解。