4.7 Article

Facilely constructed two-sided microstructure interfaces between electrodes and cellulose paper active layer: eco-friendly, low-cost and high-performance piezoresistive sensor

期刊

CELLULOSE
卷 28, 期 10, 页码 6389-6402

出版社

SPRINGER
DOI: 10.1007/s10570-021-03913-8

关键词

Microstructure interface; Polyester conductive tape; Cellulose paper; Carbon ink; Piezoresistive sensor; Wearable applications

资金

  1. Distinguished Young Scientific and Technological Talents Project of Sichuan Province [2019JDJQ0016]
  2. National Science Funds for Excellent Young Scholars of China [61822106]
  3. Natural Science Foundation of China [U19A2070]

向作者/读者索取更多资源

In this study, a low-cost, eco-friendly, and high-performance flexible piezoresistive pressure sensor was developed by combining polyester conductive electrodes and cellulose paper with inherent microstructure surfaces. The sensor showed high pressure sensitivities, good durability, and suitability for various wearable applications. The study provides a simple and effective strategy for designing piezoresistive sensors using microstructure interfaces between electrodes and active layer.
The microstructure plays an important role in improving the sensing performance of pressure sensor. However, the design of microstructural active layer of pressure sensor usually involves complex process and expensive raw materials. Herein, the common polyester conductive electrodes and cellulose paper that both have inherent microstructure surface are combined to form two-sided microstructure interfaces for low-cost, eco-friendly and high-performance flexible piezoresistive pressure sensor. In order to obtain conductive and low-cost active layer paper, daily carbon ink, which is usually used for writing, is preferred as a conductive material. Meanwhile, we experimentally confirm that the proposed structure is also suitable for other conductive materials, such as carbon nanotubes. The results show that as-fabricated piezoresistive sensor has high pressure sensitivities of 5.54 and 1.61 kPa(-1) in the wide linear ranges of 0.5 - 5 and 5 - 60 kPa, respectively, and good durability (5000 cycles under 2 kPa). The sensing mechanism of the piezoresistive sensor is analyzed by combining the characterization results and finite element simulation. Benefitting from the high sensing performance and good flexibility, the piezoresistive sensor is demonstrated for multiple wearable applications (e.g., wrist pulse, speech recognition, finger bending, abdominal respiration, counting steps, and pressure distribution). This work provides a simple and effective strategy for the design of piezoresistive sensor from the microstructure interfaces between electrodes and active layer.

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