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首页> 外文期刊>Langmuir: The ACS Journal of Surfaces and Colloids >Cationic Surfactant-Induced Formation of Uniform Gold Nanoparticle Clusters with High Efficiency of Photothermal Conversion under Near-Infrared Irradiation
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Cationic Surfactant-Induced Formation of Uniform Gold Nanoparticle Clusters with High Efficiency of Photothermal Conversion under Near-Infrared Irradiation

机译:阳离子表面活性剂诱导在近红外辐射下的光热转化效率高效率的形成均匀金纳米粒子簇

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摘要

A novel and simple method for the fabrication of gold nanoparticle (AuNP) clusters was introduced for use as an efficient near-infrared (NIR) photothermal agent. Cationic surfactants were employed to assemble AuNPs into clusters, during which polyvinylpyrrolidone (PVP) was used to stabilize the AuNP clusters. Through this manner, AuNP clusters with a uniform shape and a narrow size distribution (55.4 ± 5.0 nm by electron microscope) were successfully obtained. A mechanism for the formation of AuNP clusters was studied and proposed. Electrostatic interactions between AuNPs and cationic surfactants, hydrophobic interactions between hydrocarbon chains of cationic surfactants, and repulsive steric interactions of PVP were found to play an important role with regard to the formation mechanism. Photothermal effect in the NIR range of the AuNP clusters was demonstrated; results presented a highly efficient photothermal conversion (with a maximum η of 65%) of the AuNP clusters. The clusters could be easily coated by a silica layer, enabling their biocompatibility and colloidal stability in physiological fluids. The easy-to-fabricate AuNP clusters showed high potential of use as an NIR photothermal agent for cancer therapy.
机译:引入了制备金纳米粒子(AUNP)簇的新颖和简单的方法,用作有效的近红外(NIR)光热试剂。使用阳离子表面活性剂将AUNP组装成簇,在此期间使用聚乙烯吡咯烷酮(PVP)来稳定AUNP簇。通过这种方式,成功地获得了具有均匀形状和窄尺寸分布(通过电子显微镜的55.4±5.0nm)的AUNP簇。研究并提出了一种形成AUNP集群的机制。发现阳离子表面活性剂之间的静电相互作用,阳离子表面活性剂的烃链之间的疏水相互作用,并发现PVP的排斥空间相互作用在形成机制方面发挥着重要作用。展示了AUNP集群NIR范围的光热效应;结果呈现了高效的光热转化(最大η的65%)的AUNP簇。簇可以通过二氧化硅层容易地涂覆,使其在生理流体中的生物相容性和胶体稳定性。易于制造的AUNP簇显示出高潜力作为癌症治疗的NIR光热试剂。

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    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

    Department of Chemical and Biomolecular Engineering Sogang University 35 Baekbeom-ro Mapo-gu Seoul 04107 South Korea;

    School of Chemical Engineering and SKKU Advanced Institute of Nanotechnology (SAINT) Sungkyunkwan University 2066 Seobu-ro Jangan-gu Suwon Gyeonggi-do 16419 South Korea;

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  • 正文语种 eng
  • 中图分类 物理化学(理论化学)、化学物理学 ; 化学 ;
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