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Surface functionalization of graphite-encapsulated gold nanoparticles for multiple biomedical applications using RF plasma

机译:石墨封装的金纳米颗粒的表面功能化,用于使用RF等离子体的多种生物医学应用

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Gold nanoparticle has attracted extensive attentions due to its special optical properties and less toxicity and multiple consequent biomedical applications such as biosensors, bioimaging, tumor treatment and immunoassays diagnosis. They are usually synthesized and capped in chemical ways. In the present work, we report a new convenient physical method as an alternative one to fabricate the graphite-encapsulated gold nanoparticles by employing the dc arc discharge. The discharge current and voltage was 100-120 A and 20-30 V, respectively. Several graphene layers covering the gold nanoparticles make the gold core more stable and through which bonding with various functionalities can be easily established due to the compatibility of carbon. To immobilize biomolecules onto the surface of nanoparticles, we performed the surface functionalization of nanoparticles by using the radio frequency inductively coupled ammonia plasma. A typical plasma condition was 50 Pa in gas pressure, and 80 W in RF power. HR-TEM, XRD, SEM, XPS and UV-Vis were performed to characterize the nanoparticles, part of the results as reported earlier showed the graphite-encapsulated gold nanoparticles have been fabricated successfully with a uniform size distribution ranging from 15 to 35 nm in diameter. Several gold and graphite crystallite structures were observed. Carbon, oxygen, gold and nitrogen chemical components were analyzed by the XPS measurement. Amino groups' introduction onto the surface of the particles has been demonstrated. Relationship between population of the amino groups and plasma exposure duration has been studied. The absolute population of amino groups grafted onto the surface of the nanoparticle has also been calculated recently using sulfosuccinimidyl 6-[3A(2-pyridyldithio)-propionamido] hexanoate(sulfo-LC-SPDP) reaction protocol. Other functionalities beside amino group, for instance, -COOH, are also in consideration by corresponding plasma treatment. It is considered th- t our robust graphite-encapsulated gold nanoparticles are promising to be used for different biomedical purposes, after being functionalized and immobilized by the biomolecules of interest.
机译:金纳米颗粒由于其特殊的光学性能和较低的毒性以及随之而来的生物医学应用(例如生物传感器,生物成像,肿瘤治疗和免疫分析)而受到广泛关注。它们通常以化学方式合成和封端。在目前的工作中,我们报告了一种新的方便的物理方法,作为通过采用直流电弧放电来制造石墨封装的金纳米颗粒的替代方法。放电电流和电压分别为100-120 A和20-30V。覆盖金纳米颗粒的几个石墨烯层使金核更加稳定,由于碳的相容性,通过该层可以轻松建立具有各种功能的键。为了将生物分子固定在纳米颗粒的表面,我们通过使用射频感应耦合氨等离子体对纳米颗粒进行了表面功能化。典型的等离子体条件是气压为50 Pa,射频功率为80W。进行了HR-TEM,XRD,SEM,XPS和UV-Vis表征纳米颗粒,如先前报道的部分结果表明,成功地制备了石墨包裹的金纳米颗粒,其粒径分布在15至35 nm之间。直径。观察到几种金和石墨微晶结构。通过XPS测量分析了碳,氧,金和氮的化学成分。已经证明了将氨基引入颗粒表面。已经研究了氨基的数量与血浆暴露时间之间的关系。最近还使用磺基琥珀酰亚胺基6- [3A(2-吡啶基二硫代)-丙酰胺基]己酸酯(磺基-LC-SPDP)反应方案计算了接枝到纳米颗粒表面的氨基的绝对数量。相应的等离子体处理也考虑了氨基以外的其他官能团,例如-COOH。可以认为,经过我们感兴趣的生物分子的功能化和固定化后,坚固的石墨包裹金纳米颗粒有望用于不同的生物医学目的。

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