4.7 Article

Mimicking skin cellulose hydrogels for sensor applications

期刊

CHEMICAL ENGINEERING JOURNAL
卷 427, 期 -, 页码 -

出版社

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.130921

关键词

Cellulose; Self-assembly; Biomimetic hydrogel; Strain sensor

资金

  1. National Natural Science Foundation of China [31890774]
  2. Fundamental Research Funds for the Central Nonprofit Research Institution of Chinese Academy of Forestry [CAFYBB2021QB004]
  3. National Natural Science Foundation for Youth [32001283]
  4. National Key R&D Program of China [2017YFE0106800]

向作者/读者索取更多资源

The study successfully fabricated a biocompatible cellulose biomimetic hydrogel with skin-like properties, showing excellent performance in toughness, stretchability, elasticity, and self-stiffness. By utilizing the crystallization behavior of cellulose, the design mimics the skin's structures, limiting water swelling and enabling the preparation of high-performance strain sensors.
The soft electronics industry is booming. To integrate with soft tissues (e.g. skin), the materials must possess skinlike properties in terms of stretchability, toughness, elasticity, softness, self-stiffness, swelling resistance, and conductivity. Herein, a biocompatible cellulose biomimetic hydrogel (CBH) showing the characteristics of the skin is fabricated. The first step is the regulation of cellulose self-assembly to form a porous non-swelling supramolecular fiber skeleton. Then, the elastic polymers generate within the pores of skeleton. This design mimics the skin's structures by utilizing the crystallization behavior of cellulose. Importantly, the cellulose supramolecular network has significantly strengthened the resultant hydrogels with over a 45-fold increase in toughness, and it could reach 4.3 MJ/m3. Moreover, it shows enhanced properties in terms of stretchability, modulus, selfstiffness and elasticity. Investigation on the swelling resistance shows that the utilization of non-swelling porous cellulose skeleton can limit the swelling of CBH. Finally, the fabrication of conductive CBH is performed through the in-situ polymerization of aniline within CBH. It can retain the mechanical features due to the tunable swelling, and also be used as a sensitive and stable strain sensor to monitor human motions, even under an aqueous environment. The gauge factor within the range of 90% to 600% was 1.7. This study highlights the significance of utilizing original cellulose features and provides a new avenue to prepare high-performance strain sensors.

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