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Tangential Flow Ultrafiltration: A Green Method for the Size Selection and Concentration of Colloidal Silver Nanoparticles

机译:切向流超滤:胶体银纳米颗粒尺寸选择和浓缩的绿色方法

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摘要

Nowadays, AgNPs are extensively used in the manufacture of consumer products,1 water disinfectants,2 therapeutics,1, 3 and biomedical devices4 due to their powerful antimicrobial properties.3-6 These nanoparticle applications are strongly influenced by the AgNP size and aggregation state. Many challenges exist in the controlled fabrication7 and size-based isolation4,8 of unfunctionalized, homogenous AgNPs that are free from chemically aggressive capping/stabilizing agents or organic solvents.7-13 Limitations emerge from the toxicity of reagents, high costs or reduced efficiency of the AgNP synthesis or isolation methods (e.g., centrifugation, size-dependent solubility, size-exclusion chromatography, etc.).10,14-18 To overcome this, we recently showed that TFU permits greater control over the size, concentration and aggregation state of Creighton AgNPs (300 ml of 15.3 μg ml-1 down to 10 ml of 198.7 μg ml-1) than conventional methods of isolation such as ultracentrifugation.19TFU is a recirculation method commonly used for the weight-based isolation of proteins, viruses and cells.20,21 Briefly, the liquid sample is passed through a series of hollow fiber membranes with pore size ranging from 1,000 kD to 10 kD. Smaller suspended or dissolved constituents in the sample will pass through the porous barrier together with the solvent (filtrate), while the larger constituents are retained (retentate). TFU may be considered a "green" method as it neither damages the sample nor requires additional solvent to eliminate toxic excess reagents and byproducts. Furthermore, TFU may be applied to a large variety of nanoparticles as both hydrophobic and hydrophilic filters are available.The two main objectives of this study were: 1) to illustrate the experimental aspects of the TFU approach through an invited video experience and 2) to demonstrate the feasibility of the TFU method for larger volumes of colloidal nanoparticles and smaller volumes of retentate. First, unfuctionalized AgNPs (4 L, 15.2 μg ml-1) were synthesized using the well-established Creighton method22,23 by the reduction of AgNO3 with NaBH4. AgNP polydispersity was then minimized via a 3-step TFU using a 50-nm filter (460 cm2) to remove AgNPs and AgNP-aggregates larger than 50 nm, followed by two 100-kD (200 cm2 and 20 cm2) filters to concentrate the AgNPs. Representative samples were characterized using transmission electron microscopy, UV-Vis absorption spectrophotometry, Raman spectroscopy, and inductively coupled plasma optical emission spectroscopy. The final retentate consisted of highly concentrated (4 ml, 8,539.9 μg ml-1) yet lowly aggregated and homogeneous AgNPs of 1-20 nm in diameter. This corresponds to a silver concentration yield of about 62%.
机译:如今,AgNP被广泛用于消费产品, 1 水消毒剂, 2 疗法, 1、3 和生物医学设备的生产中。 4 由于其强大的抗菌特性。 3-6 这些纳米颗粒的应用受到AgNP大小和聚集状态的强烈影响。在没有化学侵蚀性封端/稳定剂或有机溶剂的情况下,未官能化,均质的AgNP的受控制备 7 和基于尺寸的分离 4,8 存在许多挑战。 sup> 7-13 局限性在于试剂的毒性,高成本或AgNP合成或分离方法(例如离心,大小依赖性溶解度,大小排阻色谱法等)效率降低。 > 10,14-18 为了克服这一点,我们最近发现TFU可以更好地控制Creighton AgNP的大小,浓度和聚集状态(向下300毫升的15.3μgml -1 到超离心等常规分离方法的10 ml(198.7μgml -1 )。 19 TFU是一种再循环方法,通常用于基于重量的蛋白质分离,病毒和细胞。 20,21 简要地讲,液体样品通过一系列孔径范围为rangin的中空纤维膜g从1,000 kD到10 kD。样品中较小的悬浮或溶解成分将与溶剂(滤液)一起通过多孔屏障,而较大的成分被保留(保留物)。 TFU可以被认为是“绿色”方法,因为它既不会损坏样品,也不需要其他溶剂来消除有毒的过量试剂和副产物。此外,由于疏水性和亲水性过滤器都可用,因此TFU可以应用于多种纳米颗粒。本研究的两个主要目标是:1)通过邀请的视频体验来说明TFU方法的实验方面; 2)证明了TFU方法对于较大体积的胶体纳米颗粒和较小体积的截留液的可行性。首先,使用完善的Creighton方法 22,23 ,通过用NaBH4还原AgNO3,合成未功能化的AgNP(4 L,15.2μgml -1 )。然后通过三步TFU使用50-nm滤光片(460 cm 2 )最小化AgNP的多分散性,以去除AgNP和大于50 nm的AgNP聚集体,然后去除两个100 kD(200 cm 2 和20 cm 2 )过滤器浓缩AgNP。使用透射电子显微镜,UV-Vis吸收分光光度法,拉曼光谱和电感耦合等离子体光学发射光谱对代表性样品进行表征。最终的截留物由高度浓缩(4 ml,8,539.9μgml -1 )但聚集度低且均匀的直径为1-20 nm的AgNP组成。这对应于约62%的银浓度产率。

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