RuO2@MoO <i>x</i> heterostructure for high-performance and quasi-solid-state biodegradable supercapacitor
Abstract
With the rapid development of wearable electronics and implantable medical devices, energy storage systems combining high-performance and biodegradability have attracted increasing attention. In this study, an oxide layer was in situ constructed on the surface of molybdenum (Mo) foil via high-temperature annealing, followed by uniform coating of ruthenium oxide (RuO2) nanoparticles, fabricating RuO2@MoOx heterostructure (HS). Furthermore, a quasi-solid-state biodegradable supercapacitor (SCs) was assembled with RuO2@MoOx HS as an electrode, achieving a specific capacitance of 544.6 F/g, along with an areal capacitance of 0.98 F/cm2 and a volumetric capacitance of 497.46 F/cm3 at 1 A/g. The device also exhibited an impressive cycle stability, retaining 85.9% of its capacitance after 2000 cycles, and an attractive energy density of 294.8 W h/kg at 987 W/kg. Moreover, the device underwent complete degradation in 5% hydrogen peroxide solution within 8 days, demonstrating excellent environmental responsiveness and biocompatibility. This work provides an effective strategy for the design and development of high-performance, biodegradable SCs and showcases promising application prospects in transient electronics and implantable biomedical systems.
Article Details
Journal Info
Applied Physics Letters
American Institute of Physics
Authors (4)
Qian Gao
College of Information Science and Engineering
Muhammad Ahsan Farooq Qaisar
School of Physical Science and Technology, Lanzhou University , Lanzhou 730000,
Zhanqi Liu
School of Physical Science and Technology, Lanzhou University , Lanzhou 730000,
Weihua Han
Guangzhou Institute of Blue Energy 2 , Guangzhou 510555,