Paper-Derived Millimeter-Thick Yarn Supercapacitors Enabling High Volumetric Energy Density.

ACS Appl Mater Interfaces

Department of Chemistry, Inha University, 100 Inharo, Incheon 22212, Republic of Korea.

Published: September 2022

AI Article Synopsis

  • Solid-state supercapacitors are promising for flexible and wearable tech but struggle with energy performance and mechanical properties due to electrode material limitations.
  • Researchers developed a high-porosity yarn electrode using PEDOT and Korean heritage paper (KHP), enhancing performance and flexibility.
  • The resulting biscrolled yarn supercapacitors demonstrated a high volumetric specific capacitance of ~6576 mF/cm, making them suitable for portable applications like smartwatches.

Article Abstract

Solid-state supercapacitors have shown extraordinary promise for flexible and wearable electronics. To date, they are still limited by relatively poor energy volumetric performances, which are largely determined by the pore structures and physicochemical properties of electrode materials. Moreover, the poor mechanical properties afforded because of the intrinsic shortcomings of electrode materials need to be resolved. Herein, we designed a flexible and solid-state yarn electrode with high porosity and high affinity toward electrolytes using poly(3,4-ethylenedioxythiophene) (PEDOT) and Korean heritage paper (KHP). To maximize the volumetric capacitive energy storage, PEDOT-loaded conductive KHP sheets (two-dimensional) were transformed into a biscrolled yarn (one-dimensional) simple twisting. The volumetric capacitance of the biscrolled yarn supercapacitors with 1 mm cell diameter exhibited a volumetric specific capacitance of ∼6576 mF/cm at a scan rate of 25 mV/s, which is attributable to the high mass loading of PEDOT as a conductive support and increased packing density. Moreover, multiple optimized yarn supercapacitors can be connected to yield a total length of 1 m, demonstrating enormous potential as a portable and wearable power supply for operating smartwatches.

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Source
http://dx.doi.org/10.1021/acsami.2c10746DOI Listing

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