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Related Concept Videos

MOS Capacitor01:25

MOS Capacitor

A Metal-Oxide-Semiconductor (MOS) capacitor is a fundamental structure used extensively in semiconductor device technology, particularly in the fabrication of integrated circuits and MOSFETs (metal-oxide-semiconductor field-effect transistors). The MOS capacitor consists of three layers: a metal gate, a dielectric oxide, and a semiconductor substrate.
The metal gate is typically made from highly conductive materials such as aluminum or polysilicon. Beneath the metal gate lies a thin layer of...

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Related Experiment Video

Updated: Jul 21, 2026

Fabrication of Ti3C2 MXene Microelectrode Arrays for In Vivo Neural Recording
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Liquid-Crystalline MXene Inks Enable Stack-Free Thick Electrodes for High-Performance 3D-Printed

Shuqing Cao1, Rui He1, Boyu Mu1

  • 1Key Laboratory for the Physics and Chemistry of Nanodevices and Center for Carbon-based Electronics, School of Electronics, Peking University, Beijing 100871, China.

ACS Nano
|January 9, 2026
PubMed
Summary

We developed a novel 3D printing method using MXene liquid crystal (MLC) ink to create stack-free micro-supercapacitors (MSCs). This technique enhances energy and power density for advanced portable electronics.

Keywords:
3D printingMXene liquid crystalnanosheet alignmenton-chip microsupercapacitorsthick electrodes

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Area of Science:

  • Materials Science
  • Energy Storage
  • Nanotechnology

Background:

  • Miniaturized energy storage is crucial for portable electronics.
  • On-chip micro-supercapacitors (MSCs) offer high power density and stability.
  • MXene nanosheets are promising electrode materials but prone to stacking, hindering performance.

Purpose of the Study:

  • To develop a fabrication method for high-performance MXene-based MSCs.
  • To overcome the challenge of MXene nanosheet stacking in electrodes.
  • To enable the creation of thick, aligned MXene electrodes for enhanced energy storage.

Main Methods:

  • Utilized MXene liquid crystal (MLC) to prevent nanosheet stacking.
  • Developed a filtration method for homogeneous, viscoelastic MLC ink.
  • Employed 3D printing to fabricate thick, horizontally aligned MXene electrodes.

Main Results:

  • Achieved stack-free MXene electrodes with controlled alignment and thickness up to several hundred micrometers.
  • Facilitated rapid ion transport through the engineered electrode architecture.
  • Demonstrated significantly higher energy and power densities (32.32 μWh cm-2 and 8000 μW cm-2) compared to traditional methods.

Conclusions:

  • The MLC ink and 3D printing technique enable high-performance MSC fabrication.
  • This approach offers superior ion transport and energy storage capabilities.
  • Presents a promising pathway for advanced MSCs in wearable and flexible electronics.