Functional Self-Assembled Nanofibers by Electrospinning

被引:117
|
作者
Greiner, A.
Wendorff, J. H. [1 ]
机构
[1] Univ Marburg, Dept Chem, D-35032 Marburg, Germany
关键词
Co-electrospinning; Electrospinning; Fiber architectures; Functions and applications; Nanofibers; Nonwovens; Precision electrospinning;
D O I
10.1007/12_2008_146
中图分类号
O63 [高分子化学(高聚物)];
学科分类号
070305 ; 080501 ; 081704 ;
摘要
Electrospinning constitutes a unique technique for the production of nanofibers with diameters down to the range of a few nanometers. In strong contrast to conventional fiber producing techniques, it relies on self-assembly processes driven by the Coulomb interactions between charged elements of the fluids to be spun to nanofibers. The transition from a macroscopic fluid object such as a droplet emerging from a die to solid nanofibers is controlled by a set of complex physical instability processes. They give rise to extremely high extensional deformations and strain rates during fiber formation causing among others a high orientational order in the nanofibers as well as enhanced mechanical properties. Electrospinning is predominantly applied to polymer based materials including natural and synthetic polymers, but, more recently, its use has been extended towards the production of metal, ceramic and glass nanofibers exploiting precursor routes. The nanofibers can be functionalized during electrospinning by introducing pores, fractal surfaces, by incorporating functional elements such as catalysts, quantum dots, drugs, enzymes or even bacteria. The production of individual fibers, random nonwovens, or orientationally highly ordered nonwovens is achieved by an appropriate selection of electrode configurations. Broad areas of application exist in Material and Life Sciences for such nanofibers, including not only optoelectronics, sensorics, catalysis, textiles, high efficiency filters, fiber reinforcement but also tissue engineering, drug delivery, and wound healing. The basic electrospinning process has more recently been extended towards compound co-electrospinning and precision deposition electrospinning to further broaden accessible fiber architectures and potential areas of application.
引用
下载
收藏
页码:107 / 171
页数:65
相关论文
共 50 条
  • [21] Atomistic Pictures of Self-Assembled Helical Peptide Nanofibers
    Adhikary, Rumela
    Das, Avisek
    JOURNAL OF PHYSICAL CHEMISTRY B, 2022, 126 (46): : 9476 - 9492
  • [22] A self-assembled photoresponsive gel consisting of chiral nanofibers
    Zou, Lei
    Han, Dan
    Yuan, Zhiyi
    Chang, Dongdong
    Ma, Xiang
    BEILSTEIN JOURNAL OF ORGANIC CHEMISTRY, 2018, 14 : 1994 - 2001
  • [23] The internal structure of self-assembled peptide amphiphiles nanofibers
    Jiang, Hongzhou
    Guler, Mustafa O.
    Stupp, Samuel I.
    SOFT MATTER, 2007, 3 (04) : 454 - 462
  • [24] Self-assembled nanofibers from random silicate platelets
    Lin, JJ
    Chu, CC
    Chou, CC
    Shieu, FS
    ADVANCED MATERIALS, 2005, 17 (03) : 301 - +
  • [25] SELF-ASSEMBLED CONDUCTIVE NANOFIBERS FOR SPINAL CORD REGENERATION
    Koehl, Gillian
    Goding, Josef
    Di Giovanni, Simone
    Green, Rylie
    TISSUE ENGINEERING PART A, 2022, 28 : S188 - S188
  • [26] Self-assembled microstructures of functional molecules
    Ariga, Katsuhiko
    Nakanishi, Takashi
    Hill, Jonathan P.
    CURRENT OPINION IN COLLOID & INTERFACE SCIENCE, 2007, 12 (03) : 106 - 120
  • [27] Functional Self-assembled Monolayer Devices
    Zhang, Zhao-yang
    Li, Tao
    ACTA POLYMERICA SINICA, 2021, 52 (06): : 602 - 616
  • [28] Carbon nanofibers prepared by the carbonization of self-assembled cellulose nanocrystals
    Se Youn Cho
    Young Soo Yun
    Hyoung-Joon Jin
    Macromolecular Research, 2014, 22 : 753 - 756
  • [29] Self-assembled β-Sheet Peptide Nanofibers for Efficient Antigen Delivery
    Waku, Tomonori
    Kitagawa, Yuichi
    Kawabata, Kazufumi
    Nishigaki, Saki
    Kunugi, Shigeru
    Tanaka, Naoki
    CHEMISTRY LETTERS, 2013, 42 (11) : 1441 - 1443
  • [30] Electrochemical Microelectrodes Modified by Self-Assembled Stacked Graphene Nanofibers
    Yu, Yuhua
    Chai, Xiaosen
    Xu, Chun
    Zhou, Jia
    SENSORS AND MATERIALS, 2013, 25 (02) : 121 - 130