The intrinsic Raman signals provide the potential of graphene oxide (GO) for cellular imaging. Herein, novel surface-enhanced Raman scattering (SERS) labels based on GO-Ag nanoparticle (NP) composites are developed for fast cellular probing and imaging. The optimum SERS signals of the hybrids can be well controlled by adjusting the weight ratio between AgNO(3) and GO. Utilizing GO-AgNPs as the highly sensitive optical probes, fast SERS imaging of cancer cells is realized with a very short integration time of about 0.06 s per pixel. Furthermore, folic acid (FA) is covalently conjugated to GO for targeting specific cancer cells with folate receptors (FRs). Targeted SERS images can be acquired after 2 h incubation with FA-GO-AgNPs, which are specifically located on the surface of FR-positive cancer cells. In conclusion, the GO-based Raman probes mentioned here open up exciting opportunities for biomedical imaging.
A new type of hollow nanostructure featured double metal-organic frameworks shells with metal nanoparticles (MNPs) is designed and fabricated by the methods of ship in a bottle and bottle around the ship. The nanostructure material, hereinafter denoted as Void@HKUST-1/Pd@ZIF-8, is confirmed by the analyses of photograph, transmission electron microscopy, scanning electron microscopy, powder X-ray diffraction, inductively coupled plasma, and N sorption. It possesses various multifunctionally structural characteristics such as hollow cavity which can improve mass transfer, the adjacent of the inner HKUST-1 shell to the void which enables the matrix of the shell to host and well disperse MNPs, and an outer ZIF-8 shell which acts as protective layer against the leaching of MNPs and a sieve to guarantee molecular-size selectivity. This makes the material eligible candidates for the heterogeneous catalyst. As a proof of concept, the liquid-phase hydrogenation of olefins with different molecular sizes as a model reaction is employed. It demonstrates the efficient catalytic activity and size-selectivity of Void@HKUST-1/Pd@ZIF-8.
MNPs@MOF catalysts
obtained by encapsulating metal nanoparticles
(NPs) into metal–organic frameworks (MOFs) show fascinating
performance in heterogeneous catalysis. The improvement of catalytic
activity and reusability of MNPs@MOF catalysts has been a great challenge
for a long time. Herein, we demonstrate well-designed Pd/MOFs, featuring
hollow double-shell structure and magnetic property, exhibiting high
reusability, efficient catalytic activity, and size selectivity for
hydrogenation reaction. The as-synthesized Pd/MOF, denoted as Void nFe3O4@Pd/ZIF-8@ZIF-8, possesses diverse
functional structural features. The hollow cavity can improve mass
transfer; superparamagnetic Fe3O4 NPs embedded
in the inner MOF shell can enhance the separation and recyclability;
Pd NPs are highly dispersed in the matrix of the inner MOF shell,
and the outer MOF shell acts as a protector to prevent the leaching
of Pd NPs and a sieve to achieve size selectivity. As a proof of concept,
the Void nFe3O4@Pd/ZIF-8@ZIF-8
catalyst exhibited excellent performance for the hydrogenation of
styrene at room temperature. The activity only reduced 10% after 20
cycles for the higher conversions (>90%), and the lower conversion
only decreased 3.6% (from 32.5 to 28.9% conversion) after twenty consecutive
cycles, indicating the good and intrinsic reusability of the catalyst.
The proposed structure in this work provides a strategy to effectively
improve the reusability of MNPs@MOF catalysts, which would increase
their practical applications.
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