Department of Chemistry, The Hong Kong University of Science and Technology , Clear Water Bay, Hong Kong.
Key Laboratory of Advanced Textile Materials and Manufacturing Technology, Ministry of Education, Zhejiang Sci-Tech University , Hangzhou, Zhejiang 310018, People's Republic of China.
ACS Appl Mater Interfaces. 2017 Sep 6;9(35):29699-29706. doi: 10.1021/acsami.7b07522. Epub 2017 Aug 25.
Scalable manufacturing of flexible, fiber-shaped energy-storage devices has enabled great technological advances in wearable and portable technology. Replacing inefficient oxides with inexpensive and high-performance oxynitrides with more favorable three-dimensional (3D) structures is critical if the practical applications of these technologies are to be realized. Here, we developed a facile and controllable approach for the synthesis of 3D porous micropillars of molybdenum oxynitride (MON), which exhibit high conductivity, robust stability, and excellent energy-storage properties. Our fiber electrode, containing a 3D hierarchical MON-based anode, yields remarkable linear and areal specific capacitances of 64.8 mF cm and 736.6 mF cm, respectively, at a scan rate of 10 mV s. Moreover, a wearable asymmetric supercapacitor based on TiN/MON//TiN/MnO demonstrates good cycling stability with a linear capacitance of 12.7 mF cm at a scan rate of 10 mV s. These remarkable electrochemical properties are mainly attributed to the synergistic effect between the chemical composition of oxynitride and the robust 3D porous structure composed of interconnected nanocrystalline morphology. The presented strategy for the controllable design and synthesis of novel-oxide-derived functional materials offers prospects in developing portable and wearable electronic devices. We also demonstrate that these fiber supercapacitors can be combined with an organic solar cell to construct a self-powered system for broader applications.
可扩展制造的柔性纤维状储能器件推动了可穿戴和便携式技术的重大技术进步。如果要实现这些技术的实际应用,用具有更有利的三维(3D)结构的廉价且高性能的氧氮化物替代低效的氧化物至关重要。在这里,我们开发了一种简便且可控的方法来合成具有高导电性、强稳定性和优异储能性能的 3D 多孔钼氧氮化物(MON)微孔柱。我们的纤维电极包含 3D 分层 MON 基阳极,在 10 mV s 的扫描速率下,线性和面积比电容分别高达 64.8 mF cm 和 736.6 mF cm。此外,基于 TiN/MON//TiN/MnO 的可穿戴不对称超级电容器在 10 mV s 的扫描速率下具有良好的循环稳定性,线性电容为 12.7 mF cm。这些显著的电化学性能主要归因于氧氮化物的化学成分和由互连纳米晶形态组成的坚固 3D 多孔结构之间的协同效应。所提出的用于可控设计和合成新型氧化物衍生功能材料的策略为开发便携式和可穿戴电子设备提供了前景。我们还证明,这些纤维超级电容器可以与有机太阳能电池结合,构建用于更广泛应用的自供电系统。