A Bioinspired Hierarchical Fast Transport Network Boosting Electrochemical Performance of 3D Printed Electrodes.

Adv Sci (Weinh)

Institute of Functional Nano and Soft Materials (FUNSOM), Jiangsu Key Laboratory for Carbon-Based Functional Materials & Devices, Soochow University, Suzhou, Jiangsu, 215123, P. R. China.

Published: December 2022

AI Article Synopsis

  • - Current 3D printed electrodes have slow ion transport speeds, hindering their electrochemical performance, but a new bioinspired hierarchical fast transport network (HFTN) in 3D printed reduced graphene oxide/carbon nanotube (3DP GC) electrodes shows significant improvements.
  • - The HFTN enhances ion transport rates by over 50 times compared to bulk graphene electrodes and 36 times compared to traditional 3D printed ones, leading to better surface area utilization and more effective catalysts for electrocatalytic reactions.
  • - The 3DP GC/Ni-NiO||3DP GC/NiS cell achieves a low voltage of 1.42 V to reach 10 mA cm, with

Article Abstract

Current 3D printed electrodes suffer from insufficient multiscale transport speed, which limits the improvement of electrochemical performance of 3D printed electrodes. Herein, a bioinspired hierarchical fast transport network (HFTN) in a 3D printed reduced graphene oxide/carbon nanotube (3DP GC) electrode demonstrating superior electrochemical performance is constructed. Theoretical calculations reveal that the HFTN of the 3DP GC electrode increases the ion transport rate by more than 50 times and 36 times compared with those of the bulk GC electrode and traditional 3DP GC (T-3DP GC) electrode, respectively. Compared with carbon paper, carbon cloth, bulk GC electrode, and T-3DP GC electrode, the HFTN in 3DP GC electrode endows obvious advantages: i) efficient utilization of surface area for uniform catalysts dispersion during electrochemical deposition; ii) efficient utilization of catalysts enables the high mass activity of catalysts and low overpotential of electrode in electrocatalytic reaction. The cell of 3DP GC/Ni-NiO||3DP GC/NiS demonstrates a low voltage of only 1.42 V to reach 10 mA cm and good stability up to 20 h for water splitting in alkaline conditions, which is superior to commercialized Pt/C||RuO . This work demonstrates great potential in developing high-performance 3D printed electrodes for electrochemical energy conversion and storage.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9762319PMC
http://dx.doi.org/10.1002/advs.202204751DOI Listing

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