Ultra‐Small Air‐Stable Triplet‐Triplet Annihilation Upconversion Nanoparticles for Anti‐Stokes Time‐Resolved Imaging

Author:

Zhang Bolong12ORCID,Richards Kieran D.1ORCID,Jones Beatrice E.13ORCID,Collins Abigail R.1ORCID,Sanders Rosie4,Needham Sarah R.4ORCID,Qian Pu5ORCID,Mahadevegowda Amoghavarsha16,Ducati Caterina16ORCID,Botchway Stanley W.4ORCID,Evans Rachel C.1ORCID

Affiliation:

1. Department of Materials Science and Metallurgy University of Cambridge 27 Charles Babbage Road Cambridge CB3 0FS UK

2. CAS Key Laboratory of Design and Assembly of Functional Nanostructures and Fujian Provincial Key Laboratory of Nanomaterials Fujian Institute of Research on the Structure of Matter Chinese Academy of Sciences Fuzhou Fujian 350002 China

3. Diamond Light Source Didcot Oxfordshire OX11 0QX UK

4. Central Laser Facility Science and Technology Facilities Council Rutherford Appleton Laboratory Harwell Science and Innovation Campus Oxfordshire OX11 0QX UK

5. Materials and Structural Analysis Thermo Fisher Scientific Achtseweg Noord 5 5651 GG Eindhoven The Netherlands

6. The Faraday Institution Quad One Harwell Science and Innovation Campus Didcot UK

Abstract

AbstractImage contrast is often limited by background autofluorescence in steady‐state bioimaging microscopy. Upconversion bioimaging can overcome this by shifting the emission lifetime and wavelength beyond the autofluorescence window. Here we demonstrate the first example of triplet‐triplet annihilation upconversion (TTA‐UC) based lifetime imaging microscopy. A new class of ultra‐small nanoparticle (NP) probes based on TTA‐UC chromophores encapsulated in an organic–inorganic host has been synthesised. The NPs exhibit bright UC emission (400–500 nm) in aerated aqueous media with a UC lifetime of ≈1 μs, excellent colloidal stability and little cytotoxicity. Proof‐of‐concept demonstration of TTA‐UC lifetime imaging using these NPs shows that the long‐lived anti‐Stokes emission is easily discriminable from typical autofluorescence. Moreover, fluctuations in the UC lifetime can be used to map local oxygen diffusion across the subcellular structure. Our TTA‐UC NPs are highly promising stains for lifetime imaging microscopy, affording excellent image contrast and potential for oxygen mapping that is ripe for further exploitation.

Funder

H2020 European Research Council

Engineering and Physical Sciences Research Council

Diamond Light Source

Faraday Institution

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Medicine

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