Electrospinning

静电纺丝
  • 文章类型: Journal Article
    聚乙烯吡咯烷酮(PVP)是一种合成聚合物,在生物医学等各个领域具有重要意义。medical,和电子,由于其生物相容性和特殊的介电性能。静电纺丝是制造纤维最常用的工具,因为它的方便和参数优化的广泛选择。各种参数,包括溶液摩尔浓度,流量,电压,针规,和针头到收集器的距离,可被优化以获得所需形态的纤维。虽然PVP在商业上有各种分子量,分子量为130,000g/mol的PVP通常被认为是制造具有最小挑战的纤维的最容易的PVP。然而,在这种情况下,纤维直径通常在微米范围内,这限制了PVP纤维在需要纳米范围内的纤维直径的领域中的使用。一般来说,分子量较低的PVP,例如10,000g/mol和55,000g/mol,已知在纤维制备中存在挑战。在目前的研究中,对分子量为10,000g/mol和55,000g/mol的PVP进行参数优化以获得纳米纤维。通过优化上述参数,将静电纺丝技术用于纤维制造。进行SEM分析以分析纤维形态,并进行定量分析以关联参数对纤维形态的影响。这项研究将导致各种应用,例如用于持续药物释放的药物封装和用于微波吸收应用的纳米颗粒/纳米管封装。
    Polyvinylpyrrolidone (PVP) is a synthetic polymer that holds significance in various fields such as biomedical, medical, and electronics, due to its biocompatibility and exceptional dielectric properties. Electrospinning is the most commonly used tool to fabricate fibers because of its convenience and the wide choice of parameter optimization. Various parameters, including solution molarity, flow rate, voltage, needle gauge, and needle-to-collector distance, can be optimized to obtain the desired morphology of the fibers. Although PVP is commercially available in various molecular weights, PVP with a molecular weight of 130,000 g/mol is generally considered to be the easiest PVP to fabricate fibers with minimal challenges. However, the fiber diameter in this case is usually in the micron regime, which limits the utilization of PVP fibers in fields that require fiber diameters in the nano regime. Generally, PVP with a lower molecular weight, such as 10,000 g/mol and 55,000 g/mol, is known to present challenges in fiber preparation. In the current study, parameter optimization for PVP possessing molecular weights of 10,000 g/mol and 55,000 g/mol was carried out to obtain nanofibers. The electrospinning technique was utilized for fiber fabrication by optimizing the above-mentioned parameters. SEM analysis was performed to analyze the fiber morphology, and quantitative analysis was performed to correlate the effect of parameters on the fiber morphology. This research study will lead to various applications, such as drug encapsulation for sustained drug release and nanoparticles/nanotubes encapsulation for microwave absorption applications.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Pubmed)

  • 文章类型: Journal Article
    这项工作的目的是开发一个由四个互补仪器组成的PAT平台,用于表征具有美洛昔康的电纺无定形固体分散体。调查的方法,即近红外光谱,拉曼光谱,考虑到量化活性药物成分和检测反映在纤维不均匀沉积中的生产误差的能力,测试和比较比色法和图像分析。基于个体表现,计算的RMSEP值在0.654%和2.292%之间。中级数据融合包括通过潜在变量的数据压缩和用于回归目的的ANN应用被证明是有效的,产生0.153%的RMSEP值。在这些条件下,可以在整个校准范围内相应地验证模型。PAT工具的互补性,从捕获的变异性和异常值检测能力的角度证明,有助于通过数据融合提高模型性能。据作者所知,这是数据融合在PAT领域的首次应用,用于高效处理由高通量仪器提供的大分析数据。
    The aim of this work was to develop a PAT platform consisting of four complementary instruments for the characterization of electrospun amorphous solid dispersions with meloxicam. The investigated methods, namely NIR spectroscopy, Raman spectroscopy, Colorimetry and Image analysis were tested and compared considering the ability to quantify the active pharmaceutical ingredient and to detect production errors reflected in inhomogeneous deposition of fibers. Based on individual performance the calculated RMSEP values ranged between 0.654% and 2.292%. Mid-level data fusion consisting of data compression through latent variables and application of ANN for regression purposes proved efficient, yielding an RMSEP value of 0.153%. Under these conditions the model could be validated accordingly on the full calibration range. The complementarity of the PAT tools, demonstrated from the perspective of captured variability and outlier detection ability, contributed to model performance enhancement through data fusion. To the best of the author\'s knowledge, this is the first application of data fusion in the field of PAT for efficient handling of big-analytical-data provided by high-throughput instruments.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Sci-hub)

  • 文章类型: Journal Article
    Hydrogels are a suitable scaffold material for a variety of tissue engineering applications. However, these materials have a weak structure and require reinforcement. Integrating electrospun fibers could strengthen material properties. This study created fibers and evaluated the influence of the presence of polar head groups within a polysaccharide backbone following functionalization: silated-hydroxypropyl methylcellulose (Si-HPMC). Electrospinning is a multi-parameter, step by step process that requires optimization of solution and process parameters to understand and control the process. Fibers were created for 2%⁻3% wt/v solutions in water and ethanol. Viscosities of solutions were correlated with spinnability. Variations on process parameters did not reveal major variation on fiber morphology. Once controlled, the process was used for HPMC/Si-HPMC mixture solutions. Solubilization and dilution of Si-HPMC were made with common solvents for electrospinning. Two forms of polymer conformation were electrospun: silanol ending and silanolate ending. Microstructures and resulting nanofibers were analyzed by scanning electron microscopy (SEM) and Energy Dispersive Analysis (EDX). The results show the feasibility of our strategy for creating nanofibers and the influence of polar head groups on electrospinnability.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

       PDF(Sci-hub)

       PDF(Pubmed)

  • 文章类型: Journal Article
    Nanoengineering of electrode materials can directly facilitate sodium ion accessibility and transport, thus enhancing electrochemical performance in sodium ion batteries. Here, highly sodium-accessible carbon coated nanoporous TiO2 microfibers have been synthesised via the facile electrospinning technique which can deliver an enhanced capacity of ≈167 mAh g-1 after 450 cycles at current density of 50 mA g-1 and retain a capacity of ≈71 mAh g-1 at the high current rate of 1 A g-1. With the benefits of their porous structure, thin TiO2 inner walls, and the introduction of conductive carbon, the nanoporous TiO2/C microfibers exhibit high ion accessibility, fast Na ion transport, and fast electron transport, thereby leading to the excellent Na-storage properties presented here. Nanostructuring is proven to be a fruitful strategy that can alleviate the reliance on materials\' intrinsic nature; and the electrospinning technique is versatile and cost-effective for the fabrication of such an effective nanoporous microfiber structure.
    导出

    更多引用

    收藏

    翻译标题摘要

    我要上传

    求助全文

公众号