Cao Yi, Tang Peiyuan, Han Yue, Qiu Wenfeng
South China Advanced Institute for Soft Matter Science and Technology, South China University of Technology, Guangzhou, 510641, China.
Chemistry. 2020 Nov 17;26(64):14654-14664. doi: 10.1002/chem.202002303. Epub 2020 Oct 14.
With the rapid development of wearable electronics devices, there is increasing demand for the development of new flexible energy storage devices with high security, and this has become a hot research topic. Although flexible supercapacitors are considered to be high-performance energy-storage equipment because of their fast charging/discharging ability, long cycle life, good reliability, wide operating temperature range, and so on, there are still many drawbacks that need to be overcome. Herein, the La Zr O (LZO) thin film is synthesized as a new energy-storage material by using a facile electrospinning method and calcination at low temperature. In addition, the mechanism of producing the flexibility of this film is determined by TG, IR, and XRD analyses. As previous studies have suggested that the charge storage of the LZO film can be attributed to the mechanism of oxygen intercalation, the Y element is doped into the LZO film to increase the concentration of oxygen vacancies. The changes in structural and electrochemical properties of La Y Zr O (0≤x≤0.5) nanofibers (LNF-x) with increasing Y content are studied carefully to obtain the best doping sample. The LNF-0.1 sample shows the highest areal capacitance of 605.3 mF cm at 2 mA cm , so a symmetrical flexible device is fabricated with LNF-0.1 electrodes. This device has a high energy density (76.7 μW h cm at 2 mW cm ), good cycling stability, and excellent mechanical flexibility. This study thus provides a new research trend for portable and wearable electronics.
随着可穿戴电子设备的迅速发展,对开发具有高安全性的新型柔性储能设备的需求日益增加,这已成为一个热门的研究课题。尽管柔性超级电容器因其快速充放电能力、长循环寿命、良好的可靠性、宽工作温度范围等被认为是高性能的储能设备,但仍有许多缺点需要克服。在此,通过简便的静电纺丝法和低温煅烧合成了LaZrO(LZO)薄膜作为一种新型储能材料。此外,通过热重分析(TG)、红外光谱(IR)和X射线衍射(XRD)分析确定了该薄膜产生柔韧性的机制。正如先前研究表明LZO薄膜的电荷存储可归因于氧嵌入机制,将Y元素掺杂到LZO薄膜中以增加氧空位浓度。仔细研究了LaYZrO(0≤x≤0.5)纳米纤维(LNF-x)随着Y含量增加其结构和电化学性能的变化,以获得最佳掺杂样品。LNF-0.1样品在2mA/cm²时显示出最高面积电容为605.3mF/cm²,因此用LNF-0.1电极制备了对称柔性器件。该器件具有高能量密度(在2mW/cm²时为76.7μW·h/cm²)、良好的循环稳定性和出色的机械柔韧性。因此,本研究为便携式和可穿戴电子产品提供了一种新的研究趋势。