4.6 Article

Highly sensitive omnidirectional signal manipulation from a flexible anisotropic strain sensor based on aligned carbon hybrid nanofibers

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 10, Issue 2, Pages 928-938

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta09252a

Keywords

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Funding

  1. National Key R&D Program of China [2020YFA0709900]
  2. National Natural Science Foundation of China [51872139, 21905133, 51902158, 51903121]
  3. NSF of Jiangsu Province [BK20190683]
  4. Six Talent Peak Project of Jiangsu Province [XCL-021, XCL-018]
  5. Natural Science Foundation of Jiangsu Higher Education Institutions [19KJB430002]
  6. Jiangsu Province Postdoctoral Science Foundation [2019K191]

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A novel approach was proposed to prepare an anisotropic film composed of aligned carbon hybrid nanofibers for multidirectional sensing, with the introduction of vanadium nitride nanoparticles to improve conductivity and elasticity. The resulting sensor exhibited remarkable direction-dependent responsiveness, with outstanding sensitivity, reliability, stability, and the ability to distinguish loading direction for full monitoring of human motion.
Although wearable electronic technology has been largely improved to accomplish numerous requirements, the traditional single-axis strain sensor is normally limited in the process of detecting the complex movements of the human body. Here, a simple and efficient strategy is proposed to prepare an anisotropic film that is composed of aligned carbon hybrid nanofibers for multidirectional sensing. The introduction of vanadium nitride (VN) nanoparticles with metallic conductivity improves the conductivity and elasticity of the carbon nanofibers, affording outstanding sensitivity for their sensing behaviors. Due to the ingenious self-alignment, the packed sensor possesses remarkable direction-dependent responsiveness. Specifically, the gauge factor of this anisotropic strain sensor that stretched along the fiber parallel direction is more than 12 times higher than that of the fiber extended in the perpendicular direction. The fabricated sensor also exhibits satisfactory performance with high sensitivity as well as excellent reliability and stability (>4000 cycles). Moreover, an integrated strain sensor has been cross-shaped assembled from these two anisotropic films, displaying a unique capability to distinguish loading direction. As a result, the integrated multidirectional strain sensor achieves the full realization of monitoring human motion with a high degree of freedom, demonstrating its potential application in a new generation of wearable intelligent electronics.

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