New nanostructure means new nanotechnology and nanoscience. The need of complex nanostructure-based advanced functional nanomaterials has promoted the appearance of several kinds of multifluid electrospinning processes, such as tri-axial electrospinning, quad-fluid coaxial electrospinning, tri-fluid side-by-side electrospinning, and coaxial electrospinning with a side-by-side core. These multifluid processes can greatly expand the capability of electrospinning in generating new types of nanostructures with different organization manner of the inner parts, and from both spinnable and unspinnable working fluids. The key elements for conducting a multifluid electrospinning lie in a well-designed spinneret, compatibility of the working fluids, and special operational parameters. The complex nanostructures can be created through direct electrospinning of multiple fluids, through after-treatment of the electrospun products, and through ingenious design of the components, compositions and their spatial distributions as well. This article provides a simple review on the most recent publications about the multifluid electrospinning processes and the corresponding complex nanostructures. This article is characterized under: Therapeutic Approaches and Drug Discovery > Emerging Technologies Implantable Materials and Surgical Technologies > Nanomaterials and Implants.
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http://dx.doi.org/10.1002/wnan.1601 | DOI Listing |
Adv Healthc Mater
December 2024
School of Materials and Chemistry, University of Shanghai for Science and Technology, Shanghai, 200093, China.
Nanofiber membranes, produced through electrospinning, offer significant promise in the biomedical field due to their large surface area and strong mechanical properties. Their versatility is evident across applications such as drug delivery, wound healing, filtration, catalysis, and heritage conservation. However, the potential of electrospun membranes for advanced biomedical uses, like medical ultrasonic couplants, remains largely untapped.
View Article and Find Full Text PDFCarbohydr Polym
January 2025
School of Health Sciences, Saint Francis University, Hong Kong 999077, China. Electronic address:
Wound dressing is commonly used for skin injuries. The design of wound dressing typically stems from the principles of open-wound management such as infection prevention, moisture balance and healing response. A new wound dressing comprising polyvinylpyrrolidone (PVP)-berberine hydrochloride (BHC)/PVP-cellulose acetate (CA)-BHC/CA-aloin tri-layer Janus fiber was successfully fabricated using trifluid side-by-side electrospinning for antibacterial and wound healing functions.
View Article and Find Full Text PDFACS Nano
November 2024
Department of Mechanical Engineering, The University of Hong Kong, Hong Kong SAR 999077, P. R. China.
Electrospun nanofibers have become an important component in fabricating flexible electronic devices because of their permeability, flexibility, stretchability, and conformability to three-dimensional curved surfaces. This review delves into the advancements in adaptable and flexible electronic devices using electrospun nanofibers as the substrates and explores their diverse and innovative applications. The primary development of key substrates for flexible devices is summarized.
View Article and Find Full Text PDFBiomolecules
July 2024
School of Health Sciences, Saint Francis University, Hong Kong 999077, China.
Alginate is a natural polymer with good biocompatible properties and is a potential polymeric material for the sustainable development and replacement of petroleum derivatives. However, the non-spinnability of pure alginate solutions has hindered the expansion of alginate applications. With the continuous development of electrospinning technology, synthetic polymers, such as PEO and PVA, are used as co-spinning agents to increase the spinnability of alginate.
View Article and Find Full Text PDFACS Biomater Sci Eng
July 2024
School of Materials and Chemistry, University of Shanghai for Science and Technology 516 Jungong Road, Shanghai 200093, China.
Nanofiber scaffolds have gained significant attention in the field of bone tissue engineering. Electrospinning, a straightforward and efficient technique for producing nanofibers, has been extensively researched. When used in bone tissue engineering scaffolds, electrospun nanofibers with suitable surface properties promote new bone tissue growth and enhance cell adhesion.
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