3D patterned fabric-based wearable micro-supercapacitor operating at high voltage by electrostatic actuation


Lin X., Li S., Li X., Huang X., Jia L., Zhang W., ...daha çox

npj Flexible Electronics, vol.9, no.1, 2025 (SCI-Expanded, Scopus) identifier

  • Nəşrin Növü: Article / Article
  • Cild: 9 Say: 1
  • Nəşr tarixi: 2025
  • Doi nömrəsi: 10.1038/s41528-025-00435-2
  • jurnalın adı: npj Flexible Electronics
  • Jurnalın baxıldığı indekslər: Science Citation Index Expanded (SCI-EXPANDED), Scopus, INSPEC, Directory of Open Access Journals
  • Adres: Bəli

Qısa məlumat

To address the energy storage needs of wearable electronics, this study developed high-performance, flexible micro-supercapacitors (MSCs) using 2D and 3D patterned fabric-based microelectrodes. The 2D electrodes were created via a screen-printing method with an omnidirectional pre-stretching strategy, while 3D array-structured electrodes were formed through electrostatic actuation. Nano-MnO2 and Na0.77MnO2 were deposited to enhance pseudo-capacitive storage and widen the electrochemical window. The C-C/MnO2-based MSCs exhibited a 21% pseudo-capacitance ratio, achieving an area-specific capacitance of 118.2 mF cm−2 at 5 mV s−1 and an energy density of 39.25 mWh cm−2 at 0.21 mW cm−2. These MSCs maintained 95.05%, 92.04%, and 89.74% of their capacitance under stretched, twisted, and folded conditions, respectively, and showed stable performance across temperatures from −20 °C to 60 °C. Additionally, C-C/Na0.77MnO2-based MSCs extended the electrochemical window to 1.6 V and retained 100.2% capacitance after 6500 cycles. This work offers innovative strategies for advancing portable and wearable electronic devices.