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2026, 01, v.25 63-70
Preparation and piezoelectric properties of bacterial cellulose/chitosan/barium titanate aerogels
Email: ldw@ntu.edu.cn;
DOI:
Received:   2024-07-02
Received Year:   2024
Revised:   2024-12-17
Accepted:   2025-01-22
Accepted Year:   2025
Review Duration(Year):   1
Published:   2025-03-07
Publication Date:   2025-03-07
Online:   2025-03-07
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Abstract:

To prepare piezoelectric sensors with good mechanical and piezoelectric properties, BC/CS and BC/CS/BT-OH composite aerogels were fabricated using bacterial cellulose(BC) and chitosan(CS) as the aerogel matrix and hydroxylated barium titanate nanoparticles(BT-OH) as the piezoelectric material via freeze-drying. The surface morpho-logy, chemical structure, mechanical properties, and piezoelectric properties of the composite aerogels were characte-rized by scanning electron microscopy(SEM), Fourier transform infrared spectroscopy(FTIR), X-ray diffraction(XRD), a universal testing machine, and an electrometer. The results showed that the incorporation of BT-OH into the BC/CS composite aerogel rendered the internal structure more porous and the surface microstructure rougher, with BT-OH nanoparticles uniformly distributed throughout the composite. FTIR and XRD analyses confirmed the successful hydroxylation of BT nanoparticles. When the BT-OH mass fraction was 2.0%, the BC/CS/BT-OH composite aerogel exhibited optimal mechanical performance, achieving a compressive stress of 77.69 kPa at 70% strain, which was1.93 times that of the BC/CS composite aerogel under the same strain condition, demonstrating excellent fatigue resistance. The introduction of BT-OH also enhanced the piezoelectric output. At a BT-OH mass fraction of 2.0%, the output voltage and current of the BC/CS/BT-OH aerogel both reached 3.56 times those of the BC/CS composite aerogel.

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Basic Information:

China Classification Code:TP212;TQ427.26

Citation Information:

[1]WANG Yijie,SU Xin,SUN Yingying ,et al.Preparation and piezoelectric properties of bacterial cellulose/chitosan/barium titanate aerogels[J].Journal of Nantong University (Natural Science Edition),2026,25(01):63-70.

Fund Information:

南通市科技计划项目(MS22022068)

Received:  

2024-07-02

Received Year:  

2024

Revised:  

2024-12-17

Accepted:  

2025-01-22

Accepted Year:  

2025

Review Duration(Year):  

1

Published:  

2025-03-07

Publication Date:  

2025-03-07

Online:  

2025-03-07

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