scholarly journals Nanoscale control of single molecule Förster resonance energy transfer by a scanning photonic nanoantenna

Nanophotonics ◽  
2020 ◽  
Vol 9 (12) ◽  
pp. 4021-4031 ◽  
Author(s):  
Maria Sanz-Paz ◽  
Jerome Wenger ◽  
Niek F. van Hulst ◽  
Mathieu Mivelle ◽  
Maria F. Garcia-Parajo

AbstractFörster Resonance Energy Transfer (FRET) is a widely applied technique in biology to accurately measure intra- and inter-molecular interactions at the nanometre scale. FRET is based on near-field energy transfer from an excited donor to a ground state acceptor emitter. Photonic nanoantennas have been shown to modify the rate, efficiency and extent of FRET, a process that is highly dependent on the near-field gradient of the antenna field as felt by the emitters, and thus, on their relative distance. However, most of the experiments reported to date focus on fixed antennas where the emitters are either immobilized or diffusing in solution, so that the distance between the antenna and the emitters cannot be manipulated. Here, we use scanning photonic nanoantenna probes to directly modulate the FRET efficiency between individual FRET pairs with an unprecedented nanometric lateral precision of 2 nm on the antenna position. We find that the antenna acts as an independent acceptor element, competing with the FRET pair acceptor. We directly map the competition between FRET and donor-antenna transfer as a function of the relative position between the antenna and the FRET donor-acceptor pair. The experimental data are well-described by FDTD simulations, confirming that the modulation of FRET efficiency is due to the spatially dependent coupling of the single FRET pair to the photonic antenna.

Nanoscale ◽  
2020 ◽  
Vol 12 (16) ◽  
pp. 8742-8749 ◽  
Author(s):  
Syue-Liang Lin ◽  
Cheng Allen Chang

Nanocomposite NaYF4:Nd,Yb@Yb@Yb,Er@Y with Nd3+ in the core and Er3+ in the shell to shorten the emitter (Er3+)–photosensitizer distance to achieve better Förster resonance energy transfer (FRET) for better-performing photo-nanotheranostic materials.


Nanomaterials ◽  
2020 ◽  
Vol 10 (10) ◽  
pp. 2035
Author(s):  
Syue-Liang Lin ◽  
Han-Chun Chen ◽  
Cheng Allen Chang

Several robust titania (TiO2) coated core/multishell trivalent lanthanide (Ln) upconversion nanoparticles (UCNPs) hybrid architecture designs have been reported for use in photodynamic therapy (PDT) against cancer, utilizing the near-infrared (NIR) excited energy down-shifting and up-conversion chain of Nd3+ (λ793-808 nm) → Yb3+ (λ980 nm) → Tm3+(λ475 nm) → TiO2 to produce reactive oxygen species (ROS) for deep tissue-penetrating oxidative cytotoxicity, e.g., NaLnF4:Yb,Tm (Ln = Y, Gd). Herein, we demonstrate that by doping the Tm3+ emitter ions in the outer shell and the Nd3+ sensitizer ions in the core, the newly designed NaYF4:Nd,Yb@Yb@Yb,Tm@TiO2 hybrid UCNPs exert more ROS production than the reference NaYF4:Yb,Tm@Yb@Nd,Yb@ TiO2 with the Tm3+ ions in the core and the Nd3+ ions in the outer shell, upon 793 nm laser irradiation, primarily due to the shortening of the Tm3+-TiO2 distance of the former with greater Förster resonance energy transfer (FRET) efficiency. After coating with polyallylamine hydrochloride (PAH)/polyethylene glycol folate (PEG-FA), the resulting NaYF4:Nd,Yb@Yb@Yb,Tm@TiO2-PAH-PEG-FA hybrid nanocomposites could be internalized in MDA-MB-231 cancer cells, which also show low dark cytotoxicity and effective photocytotoxicity upon 793 nm excitation. These nanocomposites could be further optimized and are potentially good candidates as nanotheranostics, as well as for other light-conversion applications.


2020 ◽  
Vol 8 (40) ◽  
pp. 14125-14137
Author(s):  
Ronald Merckx ◽  
Thomas Swift ◽  
Ryan Rees ◽  
Joachim F. R. Van Guyse ◽  
Ella Schoolaert ◽  
...  

A well-defined FRET system based on heterotelechelic poly(2-ethyl-2-oxazoline) containing pyrene and coumarin 343 was successfully used as fluorescent probe for temperature sensing and processed into fibres and films showing excellent FRET efficiency.


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