Engineering microencapsulation of highly catalytic gold nanoclusters for an extreme thermal stability

Nanoscale ◽  
2015 ◽  
Vol 7 (48) ◽  
pp. 20584-20592 ◽  
Author(s):  
Ana Sousa-Castillo ◽  
Mathilde Gauthier ◽  
Raul Arenal ◽  
Moisés Pérez-Lorenzo ◽  
Miguel A. Correa-Duarte

A synthetic strategy based on microencapsulation endows ultra-small gold nanoparticles with an outstanding thermal stability.

2016 ◽  
Vol 11 (4) ◽  
pp. 04B310 ◽  
Author(s):  
Robin Capomaccio ◽  
Inês Osório ◽  
Isaac Ojea-Jiménez ◽  
Giacomo Ceccone ◽  
Pascal Colpo ◽  
...  

Nanomaterials ◽  
2021 ◽  
Vol 11 (9) ◽  
pp. 2181
Author(s):  
Ryan D. Mellor ◽  
Andreas G. Schätzlein ◽  
Ijeoma F. Uchegbu

Gold nanoparticles (AuNPs) are used experimentally for non-invasive in vivo Raman monitoring because they show a strong absorbance in the phototherapeutic window (650–850 nm), a feature that is accompanied by a particle size in excess of 100 nm. However, these AuNPs cannot be used clinically because they are likely to persist in mammalian systems and resist excretion. In this work, clustered ultrasmall (sub-5 nm) AuNP constructs for in vivo Raman diagnostic monitoring, which are also suitable for mammalian excretion, were synthesized and characterized. Sub-5 nm octadecyl amine (ODA)-coated AuNPs were clustered using a labile dithiol linker: ethylene glycol bis-mercaptoacetate (EGBMA). Upon clustering via a controlled reaction and finally coating with a polymeric amphiphile, a strong absorbance in the phototherapeutic window was demonstrated, thus showing the potential suitability of the construct for non-invasive in vivo detection and monitoring. The clusters, when labelled with a biphenyl-4-thiol (BPT) Raman tag, were shown to elicit a specific Raman response in plasma and to disaggregate back to sub-5 nm particles under physiological conditions (37 °C, 0.8 mM glutathione, pH 7.4). These data demonstrate the potential of these new AuNP clusters (Raman NanoTheranostics—RaNT) for in vivo applications while being in the excretable size window.


1998 ◽  
Vol 76 (11) ◽  
pp. 1707-1716 ◽  
Author(s):  
I Coulthard ◽  
S Degen ◽  
Y -J Zhu ◽  
T K Sham

Utilizing porous silicon as a reducing agent and a substrate, gold complex ions [AuCl4]- were reduced from aqueous solution to produce nanoparticles of gold upon the surface of porous silicon. Scanning electron microscopy (SEM) was utilized to study the morphology of the porous silicon layers and the deposits of gold nanoparticles. It is found that preparation conditions have a profound effect on the morphology of the deposits, especially on porous silicon prepared from a p-type wafer. The gold nanoparticles, varying from micrometric aggregates of clusters of the order of 10 nm, to a distribution of nearly spherical clusters of the order of 10 nm, to strings of ~10 nm were observed and compared to bulk gold metal using X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), and X-ray absorption spectroscopy (XAS). These techniques confirm and complement the SEM findings. The potential for this reductive deposition technique is noted.Key words: gold nanostructures, reductive deposition, porous silicon, morphology, X-ray spectroscopy.


2016 ◽  
Vol 4 (7) ◽  
pp. 2484-2493 ◽  
Author(s):  
Anitha Senthamizhan ◽  
Brabu Balusamy ◽  
Asli Celebioglu ◽  
Tamer Uyar

In this report, we demonstrated a synthetic strategy for the effective removal of Pb2+in water by creating stable “nanotraps” in electrospun porous cellulose acetate fibers encapsulated with dithiothreitol capped gold nanoclusters.


1999 ◽  
pp. 211-215 ◽  
Author(s):  
I. L. Garzón ◽  
K. Michaelian ◽  
M. R. Beltrán ◽  
A. Posada-Amarillas ◽  
P. Ordejón ◽  
...  

2019 ◽  
Vol 186 (12) ◽  
Author(s):  
Zhipeng Zhang ◽  
Sha Li ◽  
Pengcheng Huang ◽  
Jiayu Feng ◽  
Fang-Ying Wu

Langmuir ◽  
2013 ◽  
Vol 29 (50) ◽  
pp. 15698-15703 ◽  
Author(s):  
Jonghoon Choi ◽  
Sungwook Park ◽  
Zoran Stojanović ◽  
Hyung-Seop Han ◽  
Jongwook Lee ◽  
...  

2009 ◽  
Vol 113 (47) ◽  
pp. 20193-20197 ◽  
Author(s):  
Luyun Jiang ◽  
Xing Yin ◽  
Jianwei Zhao ◽  
Hongmei Liu ◽  
Yunhong Liu ◽  
...  

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