Issue 25, 2023

Monolithically integrated flexible sensing systems with multi-dimensional printable MXene electrodes

Abstract

Manufacturing flexible integrated sensing systems by combining versatile printable inks and diverse printing techniques allows for the monolithic utilization of the electrochemical/sensing performance of individual devices. Herein, we developed an integration strategy for fabricating high-performance flexible integrated sensing systems by utilization of multi-dimensional printable MXene electrodes. With branched polyethyleneimine (BPEI) serving as joining sites and flexible spacers, the flexible printed electrodes exhibited weak self-restacking, high interlayer charge carrier transporting ability, and remarkably enhanced mechanical robustness. As a result, the printed micro-supercapacitors (MSCs) showed ultrahigh areal capacitance (3783.53 mF cm−2 at a scan rate of 1 mV s−1), outstanding flexibility (stable after 1000 bending/release cycles), high energy density (99.4 μW h cm−2) and high power density (18 mW cm−2). Besides, the printed strain sensor board displayed high sensitivity over a wide working strain range (e.g., gauge factor: 11 781.5 in the 41–52% strain range). These results represent the record values in most state-of-the-art devices. In addition, an all-in-one flexible sensing system integrated with both an MSC and a strain sensor on a flexible substrate is demonstrated, which exhibited exceptional sensitivity to body movements. This proposed strategy paves a high-efficiency pathway toward high-performance, monolithically integrated electronics.

Graphical abstract: Monolithically integrated flexible sensing systems with multi-dimensional printable MXene electrodes

Supplementary files

Article information

Article type
Communication
Submitted
01 Mar 2023
Accepted
26 May 2023
First published
08 Jun 2023

J. Mater. Chem. A, 2023,11, 13238-13248

Monolithically integrated flexible sensing systems with multi-dimensional printable MXene electrodes

S. Liu, Q. Meng, Y. Gao, J. Zhang, J. Li, Y. Yang, X. Zhang, H. Li and X. Liu, J. Mater. Chem. A, 2023, 11, 13238 DOI: 10.1039/D3TA01261A

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