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Nano-Engineering Of Magnetic Particles For Biocatalysis And Bioseparation

机译:纳米工程磁性颗粒生物分析和生物分离

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Magnetic nanoparticles encapsulated in a thin coating as magnetic separable nano-vehicle for chemical species is a hot but challenging area. The facilitated separation of a small magnetic body carrying biologically active species is of a tremendous interest however; the stability of the magnetic body remains a key issue. We report new syntheses of silica encapsulated magnetic nanosize particles as magnetic separable carriers in large quantities based on simple synthetic techniques. The major advantage of using nano-size magnetic particles as carriers is that they display an excellent mass transfer coefficient (high surface area to volume ratio) comparable to soluble species but can still be easily separated from liquid using magnetic interaction with an external applied inhomogeneous magnetic field (i.e. 50MGOe). It is shown that the external coating surfaces can isolate and protect the magnetic core from destructive reactions with the environment where a wide range of conditions for fine chemical catalysis can be made possible. The functionalized surfaces could also offer anchoring sites for the immobilization of active chemical species of interests (enzymes, DNA oligos and antibodies). Most of these applications require nanoparticles covered with appropriate surface chemical functionalities where a strong magnetic core is essential for the separation of each particles from solution.
机译:封装在薄涂层中的磁性纳米颗粒作为用于化学物质的磁性可分离纳米载体是一个炎热但有挑战性的区域。然而,携带生物活性物质的小磁体的便利分离是巨大的兴趣;磁体的稳定性仍然是一个关键问题。基于简单的合成技术,我们将新的二氧化硅封装磁性纳米粒子颗粒报告为磁性可分离载体的新合成。使用纳米尺寸磁性颗粒作为载体的主要优点是它们显示出与可溶性物质相当的优异的质量转移系数(高表面积至体积比),但仍然可以使用磁性相互作用与外部施加的不均匀磁性容易地与液体分离场(即50MGoe)。结果表明,外部涂层表面可以将磁芯与破坏性反应隔离并保护磁芯可以与细化学催化的广泛条件的影响。官能化表面还可以提供用于固定活性化学物种的锚定部位(酶,DNA寡核苷酸和抗体)。这些应用中的大多数需要覆盖有适当的表面化学功能的纳米颗粒,其中强磁芯对于从溶液中分离每个颗粒是必不可少的。

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