Controllable Doping for Tunable and Multimodal Emission in ZnS-Based Mechanoluminescent Nanocrystals.

Wang, Zhongxiang; Jin, Lu; Ni, Haoyang; Kim, Hwangsun; Zeng, Yushun; Zhou, Qifa; Chi, Miaofang; Nam, Jin et al. · Nano Lett · 2025

basic_science · Level V

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Abstract

Scaling mechanoluminescent materials to the nanoscale enhances their potential for biomedical applications due to improved sensitivity, resolution, and biocompatibility. Here, we report a versatile strategy for synthesizing wavelength-tunable mechanoluminescent ZnS nanocrystals doped with Ag<sup>+</sup>, Cu<sup>2+</sup>, or Mn<sup>2+</sup>. The method involves coassembly of ZnS and metal sulfide nanocrystals within silica nanoreactors, followed by high-temperature calcination to induce solid-state doping and phase transformation. The resulting ZnS:Ag<sup>+</sup>, ZnS:Cu<sup>2+</sup>, and ZnS:Mn<sup>2+</sup> nanocrystals exhibit focused ultrasound-induced mechanoluminescence at 480, 500, and 585 nm, respectively. Notably, ZnS:Ag<sup>+</sup> also shows photoluminescence and afterglow upon UV excitation. The luminescence intensity is highly dependent on Ag<sup>+</sup> concentration, with 0.15% yielding the optimal emission. These nanocrystals were further applied to stimulate neuronal cells, successfully inducing action potentials. This work highlights a scalable, dopant-tunable approach for fabricating multimodal luminescent nanomaterials with strong potential for noninvasive sono-optogenetic neuromodulation.