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Cancer theranosis using mono-disperse, mesoporous gold nanoparticles obtained via a robust, high-yield synthetic methodology

Authors
Lee, TaeksuBang, DoyeonChang, Yong WookChoi, YunaPark, Kwang YeolOh, AramHan, SeungminKim, Sun HeeLee, KwangyeolSuh, Jin-SuckHuh, Yong-MinHaam, Seungjoo
Issue Date
2016
Publisher
ROYAL SOC CHEMISTRY
Citation
RSC ADVANCES, v.6, no.16, pp.13554 - 13561
Indexed
SCIE
SCOPUS
Journal Title
RSC ADVANCES
Volume
6
Number
16
Start Page
13554
End Page
13561
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/90311
DOI
10.1039/c5ra24772a
ISSN
2046-2069
Abstract
Porous noble metal nanoparticles exhibit many attractive nanoplasmonic features, and these structures have potential applications in many fields. However, such applications have been hindered by a lack of synthetic methods with the ability to mass-produce mono-disperse nanoparticles. Current synthetic approaches to porous gold nanostructure fabrication involve galvanic replacement approaches or electrochemical deposition methods that are generally limited by stringent multi-step protocols and relatively low yields. Here, we introduce the facile synthesis of scalable, mono-disperse, mesoporous gold nanoparticles (MPGNs) using an acidic emulsification method. This method facilitates high synthetic yields (> 93%) and tunable particle sizes (130-400 nm). MPGNs exhibit enhanced payloads of gadolinium (Gd), a contrast agent for magnetic resonance imaging. Additionally, they permit photo-thermal conversion under near-infrared light (NIR) irradiation due to the increased surface area to volume ratio and the unique, structure-mediated LSPR effect. Specifically, MPGNs fabricated using our method provided Gd payloads 2-4 orders of magnitude greater than previously reported theranostic nanoprobes. We believe that our novel synthetic technique will not only contribute to large-scale production of homogeneous porous gold nanoparticles, but will also promote further research in porous noble metal nanostructures.
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