Porous Carbon Nanofiber Flexible Membranes via a Bottlebrush Copolymer Template for Enhanced High-Performance Supercapacitors.

ACS Appl Mater Interfaces

Key Laboratory of Science and Technology on High-tech Polymer Materials, Institute of Chemistry, Chinese Academy of Sciences, Beijing100190, P. R. China.

Published: February 2023

AI Article Synopsis

  • A new method was developed to create ordered porous structures in carbon nanofiber membranes using specialized block copolymers as templates, which enhances the material's properties.
  • The resulting flexible, highly porous carbon nanofiber membranes (PCNFs) displayed impressive supercapacitor qualities, achieving a capacitance of 234.1 F/g without the need for additional conductive materials.
  • PCNFs demonstrated remarkable cycling stability, retaining over 95% of their capacitance after 55,000 cycles, indicating potential applications in flexible electronics and energy storage solutions.

Article Abstract

We report a method to construct ordered hierarchical porous structures in carbon nanofiber membranes using poly(ethylene oxide)--polydimethylsiloxane bottlebrush block copolymers (BBCPs) as templates. The BBCPs self-assemble into a spherical morphology driven by small-molecule hydrogen bond donors which act as bridges between carbon precursors and templates to promote uniform dispersion of the templates. We successfully obtained flexible, self-supporting, and porous carbon nanofiber membranes (PCNFs) with high porosity. Then, a supercapacitor electrode was independently prepared using PCNFs as an active substance without infiltrating any conductive agents or binders. The PCNFs exhibit excellent performance with a capacitance of 234.1 F g at a current density of 1 A g owing to the abundant hierarchical porous structures and high content of nitrogen and oxygen elements internally. The aqueous symmetric supercapacitor prepared using PCNFs electrodes maintains more than 95% capacitance retention after 55,000 charge-discharge cycles. Furthermore, the capacitance retention reaches up to 67.72% at a current density of 50 A g (compared to 1 A g), exhibiting excellent cycling stability and rate capability. Based on the excellent electrochemical performance and flexible self-supporting ability of PCNFs, this work is expected to facilitate the development of flexible displays, flexible sensors, wearable devices, and electrocatalysis.

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Source
http://dx.doi.org/10.1021/acsami.2c19696DOI Listing

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