TY - JOUR
T1 - Hydrophobic modification of cellulose nanofibers by gallic acid and the application in pressure sensing
AU - Li, Zhimao
AU - Yan, Chunxia
AU - Xu, Wenjing
AU - Shang, Yanlong
AU - Wu, Qian
AU - Mehmood, Saqib
AU - Wang, Feijun
AU - Cheng, Chunzu
AU - Liu, Qiong
AU - Shao, Ziqiang
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2024/3
Y1 - 2024/3
N2 - Via rational molecular structure design and using gallic acid (GA) for hydrophobic modification of cellulose nanofibers (CNF), the “polymer dipole” CNF-GA with hydrophilic main chains and hydrophobic side chains was prepared, which improved the poor piezoelectric properties of CNF used for preparing pressure sensors. Due to the appearance of the side chains, the elongation at break of the CNF-GA-2, compared with CNF, was enhanced by 186 %, and the excellent tensile strength, puncture load, and tearing strength were displayed. Moreover, the significant glass transition temperature (Tg) near the human body temperature was exhibited for CNF-GA, making it possible to be applied in temperature sensing. Most importantly, the CNF-GA-2 showed the maximum hydrophobicity, with a contact angle of 76.77°. Finally, the CNF-GA-2/MXene nanocomposite film was prepared by the CNF-GA-2 with MXene through vacuum filtration. The results indicated that the film had excellent piezoelectric properties (d33 = 63.283), the generated stable induced voltage (125.6 mV), the preferable piezoresistive performance (ΔR/R0 = 2.15), the fast response/recovery time (48/61 ms), which could achieve dynamic and static responses. Moreover, this film could be used for real-time detection of limb movements (such as wrists).
AB - Via rational molecular structure design and using gallic acid (GA) for hydrophobic modification of cellulose nanofibers (CNF), the “polymer dipole” CNF-GA with hydrophilic main chains and hydrophobic side chains was prepared, which improved the poor piezoelectric properties of CNF used for preparing pressure sensors. Due to the appearance of the side chains, the elongation at break of the CNF-GA-2, compared with CNF, was enhanced by 186 %, and the excellent tensile strength, puncture load, and tearing strength were displayed. Moreover, the significant glass transition temperature (Tg) near the human body temperature was exhibited for CNF-GA, making it possible to be applied in temperature sensing. Most importantly, the CNF-GA-2 showed the maximum hydrophobicity, with a contact angle of 76.77°. Finally, the CNF-GA-2/MXene nanocomposite film was prepared by the CNF-GA-2 with MXene through vacuum filtration. The results indicated that the film had excellent piezoelectric properties (d33 = 63.283), the generated stable induced voltage (125.6 mV), the preferable piezoresistive performance (ΔR/R0 = 2.15), the fast response/recovery time (48/61 ms), which could achieve dynamic and static responses. Moreover, this film could be used for real-time detection of limb movements (such as wrists).
KW - Cellulose nanofibers (CNFs)
KW - Gallic acid (GA)
KW - Hydrophobicity
KW - Pressure sensing
UR - http://www.scopus.com/inward/record.url?scp=85185191871&partnerID=8YFLogxK
U2 - 10.1016/j.ijbiomac.2024.129770
DO - 10.1016/j.ijbiomac.2024.129770
M3 - Article
C2 - 38302028
AN - SCOPUS:85185191871
SN - 0141-8130
VL - 261
JO - International Journal of Biological Macromolecules
JF - International Journal of Biological Macromolecules
M1 - 129770
ER -