Palette of Rechargeable Mechanoluminescent Fluids Produced by a Biomineral-Inspired Suppressed Dissolution Approach.
Authors: Yang F, Wu X, Cui H, Jiang S, Ou Z, Cai S, Hong G
Mechanoluminescent materials, which emit light in response to mechanical stimuli, have recently been explored as promising candidates for photonic skins, remote optogenetics, and stress sensing. All mechanoluminescent materials reported thus far are bulk solids with micron-sized grains, and their light emission is only produced when fractured or deformed in bulk form. In contrast, mechanoluminescence has never been observed in liquids and colloidal solutions, thus limiting its biological application in living organisms. Here, we report the synthesis of mechanoluminescent fluids via a suppressed dissolution approach. We demonstrate that this approach yields stable colloidal solutions comprising mechanoluminescent nanocrystals with bright emissions in the range of 470-610 nm and diameters down to 20 nm. These colloidal solutions can be recharged and discharged repeatedly under photoexcitation and hydrodynamically focused ultrasound, respectively, thus yielding rechargeable mechanoluminescent fluids that can store photon energy in a reversible manner. This rechargeable fluid can facilitate a systemically delivered light source gated by tissue-penetrant ultrasound for biological applications that require light in the tissue, such as optogenetic stimulation in the brain.
Introduction
Purpose
Sono-optogenetics
Study Objective
To synthesize and demonstrate rechargeable mechanoluminescent colloidal nanofluids that emit light under ultrasound and can be recharged optically for potential tissue-penetrant, systemically delivered optogenetic applications.
Animal model / Human subject
Mice
Disease model
healthy
Cargo name and characteristics
Mechanoluminescent nanocrystals (nanoparticles): stable colloidal/rechargeable mechanoluminescent nanocrystals (~20 nm to larger sizes), emit 470–610 nm, store photon energy (rechargeable by photoexcitation and dischargeable by ultrasound)
Outcomes and Safety
Summary of Outcomes
The authors created stable, rechargeable mechanoluminescent nanocrystal colloidal fluids that can be photocharged and then discharge light upon hydrodynamically focused ultrasound, enabling a systemically deliverable, tissue‑penetrant, ultrasound‑gated light source for applications like optogenetic stimulation in the brain (successful ultrasound modality: hydrodynamically focused ultrasound; no numerical ultrasound parameters reported).
Safety-related matter
No safety concerns or adverse effects are mentioned in the provided text. It only discusses potential biological applications such as systemically delivered light for optogenetics.
Brain Region
Ultrasound Parameters
Focal Characteristics
Focal depth: None; Focal length: None; Aperture size: None
Treatment frequency
Multiple
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