Preparation and Evaluation of Core-Shell Nanofibers Electrospun from PEU and PCL Blends via a Single-Nozzle Spinneret

被引:6
|
作者
Fang, Zhiping [1 ]
Zhang, Shaoyue [1 ]
Wang, Han [1 ,2 ]
Geng, Xue [1 ]
Ye, Lin [1 ,3 ]
Zhang, Ai-ying [1 ,3 ]
Feng, Zeng-guo [1 ,3 ]
机构
[1] Beijing Inst Technol, Sch Mat Sci & Engn, Beijing 100081, Peoples R China
[2] Natl Inst Food & Drug Control, Beijing 102629, Peoples R China
[3] Beijing Key Lab Construct Tailorable Adv Funct Mat, Beijing 100081, Peoples R China
基金
国家重点研发计划;
关键词
poly(ether urethane); poly(?-caprolactone); poly(carbonate urethane); core-shell structured nanofiber; single-nozzle spinneret electrospinning; DEGRADATION; FABRICATION; FIBERS;
D O I
10.1021/acsapm.2c02076
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The core-shell structured nanofibers are routinely fabricated by coaxial solution and single-nozzle emulsion electrospinning of two polymers. Herein, the core-shell structured polymeric nanofibers were electrospun from mixed solutions of poly(ether urethane) (PEU) with poly(epsilon-caprolactone) (PCL) or other biodegradable aliphatic polyesters via a single-nozzle spinneret. For comparison, the mixed solutions electrospinning of poly(carbonate urethane) (PCU) with these polyesters including PCL was also conducted. The morphologies and hierarchical structures of the as-spun nanofibers were characterized by scanning electron microscopy (SEM), transmission electron microscopy (TEM), in vitro lipase degradation, differential scanning calorimeter (DSC), and Fourier-transform infrared (FTIR) analyses. It was shown that the blends of PEU with PCL or other biodegradable aliphatic polyesters were solely electrospun into the core-shell structured nanofibers with PEU as a shell and PCL or other biodegradable aliphatic polyesters as a core. The thickness of core/shell layers from 833/606 to 193.3/54.2 mu m was adjustable by varying the feeding mass ratio from 1:3 to 3:1 of PEU to PCL or other biodegradable aliphatic polyesters. In DSC analysis, the Tonset of PEU@PCL core-shell fiber was 1.31 degrees C higher than that of the PCL fiber, while Tm was approximate. Furthermore, changing the electrospinning solvents of PEU with PCL or other biodegradable aliphatic polyesters retained the formation of core-shell nanofibers. In contrast, the blends of PCU with these polyesters tended to form co-continuous structured nanofibers. The effects of the physicochemical properties of mixed solutions on the charged liquid droplets, whipped jets, and morphology of the electrospun nanofibers were also inspected. The creation of core-shell nanofibers from the blends of PEU with PCL or other biodegradable aliphatic polyesters was most likely due to the interaction between the inherent thermodynamic phase separation of the polymers and their external stretching kinetic phase separation during electrospinning.
引用
收藏
页码:2382 / 2393
页数:12
相关论文
共 50 条
  • [41] Preparation and thermal dissipation of hollow carbon fibers from electrospun polystyrene/poly(amic acid) carboxylate salt core-shell fibers
    Li, Jia-Wei
    Hsu, Hsun-Hao
    Chang, Chia‐Jui
    Chiu, Yu-Jing
    Tseng, Hsiao-Fan
    Chang, Kai-Chieh
    Karapala, Vamsi Krishna
    Lu, Tien‐Chang
    Chen, Jiun-Tai
    European Polymer Journal, 2020, 130
  • [42] CoOx nanoparticles embedded in porous graphite carbon nanofibers derived from electrospun polyacrylonitrile@polypyrrole core-shell nanostructures for high-performance supercapacitors
    Nie, Guangdi
    Lu, Xiaofeng
    Chi, Maoqiang
    Jiang, Yanzhou
    Wang, Ce
    RSC ADVANCES, 2016, 6 (60): : 54693 - 54701
  • [43] Preparation of Mannitol@Silica core-shell capsules via an interfacial polymerization process from water-in-oil emulsion
    Wu, Chang-Bo
    Wu, Gang
    Yang, Xi
    Liu, Yu-Jing
    Gao, Chen-Xi
    Ji, Qi-Hua
    Wang, Mang
    Chen, Hong-Zheng
    COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2014, 457 : 487 - 494
  • [44] Flurbiprofen axetil loaded coaxial electrospun poly(vinyl pyrrolidone)-nanopoly(lactic-co-glycolic acid) core-shell composite nanofibers: Preparation, characterization, and anti-adhesion activity
    Zhu, Tonghe
    Chen, Sihao
    Li, Wenyao
    Lou, Jianzhong
    Wang, Jihu
    JOURNAL OF APPLIED POLYMER SCIENCE, 2015, 132 (22)
  • [45] Preparation and evaluation of PLA/PVP core–shell microparticles mat via single capillary electrospraying as a potential drug-loading material
    Jiazi Hou
    Guibin Zhou
    Jinlun Hu
    Yihuan Wang
    Shuang Gao
    Polymer Bulletin, 2022, 79 : 2173 - 2188
  • [46] Electrospun core-shell nanofibers as an adsorbent for on-line micro-solid phase extraction of monohydroxy derivatives of polycyclic aromatic hydrocarbons from human urine, and their quantitation by LC-MS
    Dan Chen
    Hui Xu
    Microchimica Acta, 2020, 187
  • [47] Electrospun core-shell nanofibers as an adsorbent for on-line micro-solid phase extraction of monohydroxy derivatives of polycyclic aromatic hydrocarbons from human urine, and their quantitation by LC-MS
    Chen, Dan
    Xu, Hui
    MICROCHIMICA ACTA, 2020, 187 (01)
  • [48] Preparation of core-shell attapulgite particles by redox-initiated surface reversible addition-fragmentation chain transfer polymerization via a "graft from" approach
    Yang, Haicun
    Xue, Sheng
    Pan, Ji
    Gong, Fanghong
    Pu, Hongting
    RSC ADVANCES, 2016, 6 (17) : 14120 - 14127
  • [49] Preparation of a core-shell magnetic ion-imprinted polymer via a sol-gel process for selective extraction of Cu(II) from herbal medicines
    He, Huan
    Xiao, Deli
    He, Jia
    Li, Hui
    He, Hua
    Dai, Hao
    Peng, Jun
    ANALYST, 2014, 139 (10) : 2459 - 2466
  • [50] Facile Preparation of Ultrasmall Void Metallic Nanogap from Self-Assembled Gold-Silica Core-Shell Nanoparticles Monolayer via Kinetic Control
    Shin, Yuna
    Song, Jihwan
    Kim, Dongchoul
    Kang, Taewook
    ADVANCED MATERIALS, 2015, 27 (29) : 4344 - 4350