Institute of Materials Research, Tsinghua Shenzhen International Graduate School, Tsinghua University, Shenzhen, 518055, P. R. China.
School of Materials and Environmental Engineering, Institute of Urban Ecology and Environment Technology, Shenzhen Polytechnic, Shenzhen, 518055, P. R. China.
Small. 2023 May;19(21):e2300747. doi: 10.1002/smll.202300747. Epub 2023 Feb 23.
Micro-supercapacitors (MSCs) are an important energy storage component for future miniaturized electronic systems, yet their key performance indexes such as high-frequency response, energy density, and cycle life still have a large room to be improved. Herein, a laser-processed carbon-titanium carbide heterostructure (LCTH) electrode is demonstrated, which can excellently address the above key challenges by employing a unique one-step laser-processing fabrication method. Different from the other reported electrode structures, this LCTH electrode shows a heterogeneous structure, featuring the carbon nanofoam layer which provides extremely short ion transport channels and abundant electrochemical active sites, and the underlying titanium carbide layer which can provide excellent electron conductivity and contribute to the pseudo-capacitance. The assembled symmetric supercapacitor can stably work at the voltage window of 3.5 V at an ultra-high frequency of approximately 1121.3 Hz, exhibiting an ultra-high areal specific energy density of 721 µFV cm at 120 Hz and a cycle life of 140 000 cycles with capacitance retention of 100.95%, which is superior to most reported MSCs. The as-fabricated MSC is compatible with the contemporary embedded electronic component fabrication processes, which shows significant advantages in large-scale fabrication and system integration, demonstrating a broad prospect for future system-in-package applications.
微超级电容器(MSCs)是未来小型化电子系统的重要储能组件,但它们的关键性能指标,如高频响应、能量密度和循环寿命,仍有很大的改进空间。在此,展示了一种采用独特的一步激光处理制造方法制备的激光处理碳-碳化钛异质结构(LCTH)电极。与其他报道的电极结构不同,这种 LCTH 电极具有异质结构,包括提供极短离子传输通道和丰富电化学活性位点的碳纳米泡沫层,以及提供优异电子导电性并有助于赝电容的碳化钛层。组装的对称超级电容器可以在约 1121.3 Hz 的超高频率下在 3.5 V 的电压窗口下稳定工作,在 120 Hz 时具有超高的面比能量密度 721 µFV cm,在 140,000 次循环后具有 100.95%的电容保持率,优于大多数报道的 MSCs。所制造的 MSC 与当代嵌入式电子元件制造工艺兼容,在大规模制造和系统集成方面具有显著优势,展示了未来系统级封装应用的广阔前景。