TY - JOUR
T1 - CDs/PBAT Nanofiber Films With High Tensile Strength and Flame-Retardant Property via Microfluidic Technology
AU - Shi, Long
AU - Zhai, Jiang
AU - Li, Qing
AU - Zhu, Liangliang
AU - Zhao, Xin
AU - Chen, Su
AU - Li, Guo Xing
N1 - Publisher Copyright:
© 2024 Wiley Periodicals LLC.
PY - 2025/2/15
Y1 - 2025/2/15
N2 - The poly(butylene adipate-co-terephthalate) (PBAT) nanofiber film prepared by electrospinning method exhibits limited application in many fields due to its poor flame retardancy and machinal property, despite being a biodegradable material with exceptional toughness and ductility properties. In this work, we employed microfluidic technology to continuously produce blue fluorescent carbon dots (CDs) on an aluminum-based microfluidic chip using citrate and ethanolamine as precursors. Subsequently, utilizing microfluidic electrospinning technology, the CDs/PBAT composite nanofiber films with blue fluorescence were prepared in situ reaction. Interestingly, compared to pure PBAT nanofiber membranes, the CDs/PBAT composite nanofiber membranes exhibit a tensile strength of 4.31 MPa, representing a remarkable increase of 3.24 times, and an elongation at break of 491%, indicating an improvement of 1.62 times. More importantly, it had demonstrated that the incorporation of CDs into PBAT can achieve flame-retardant effects. We firmly believe that the microfluidic strategy could open up a new idea for the synthesis of CDs and point out the direction for the meaningful fabrication of PBAT nanofiber film with high tensile strength and flame-retardant property.
AB - The poly(butylene adipate-co-terephthalate) (PBAT) nanofiber film prepared by electrospinning method exhibits limited application in many fields due to its poor flame retardancy and machinal property, despite being a biodegradable material with exceptional toughness and ductility properties. In this work, we employed microfluidic technology to continuously produce blue fluorescent carbon dots (CDs) on an aluminum-based microfluidic chip using citrate and ethanolamine as precursors. Subsequently, utilizing microfluidic electrospinning technology, the CDs/PBAT composite nanofiber films with blue fluorescence were prepared in situ reaction. Interestingly, compared to pure PBAT nanofiber membranes, the CDs/PBAT composite nanofiber membranes exhibit a tensile strength of 4.31 MPa, representing a remarkable increase of 3.24 times, and an elongation at break of 491%, indicating an improvement of 1.62 times. More importantly, it had demonstrated that the incorporation of CDs into PBAT can achieve flame-retardant effects. We firmly believe that the microfluidic strategy could open up a new idea for the synthesis of CDs and point out the direction for the meaningful fabrication of PBAT nanofiber film with high tensile strength and flame-retardant property.
KW - carbon dots
KW - flame-retardant
KW - microfluidic electrospinning
KW - nanofiber film
UR - http://www.scopus.com/inward/record.url?scp=85212879197&partnerID=8YFLogxK
U2 - 10.1002/pol.20240868
DO - 10.1002/pol.20240868
M3 - 文章
AN - SCOPUS:85212879197
SN - 2642-4150
VL - 63
SP - 1023
EP - 1032
JO - Journal of Polymer Science
JF - Journal of Polymer Science
IS - 4
ER -