Self-powered near-infrared mechanoluminescence through MgO/MgF<sub>2</sub> piezo-photonic heterojunctions.

Wu, Sheng; Wang, Shunyu; Shao, Zhigang; Wang, Yinzhen; Xiong, Puxian · Nat Commun · 2025

basic_science · Level V

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Abstract

Near-infrared mechanoluminescent (NIR ML) materials attract considerable attention for their force-to-light conversion capabilities. However, current materials generally have disadvantages such as high threshold and poor self-recovery ability, which limit their practical applications. Herein, we present a self-powered NIR ML material MgF<sub>2</sub>:Cr<sup>3+</sup>, which does not require pre-charging process. Leveraging the structural similarity between MgF<sub>2</sub> and MgO, we design a MgO/MgF<sub>2</sub>:Cr<sup>3+</sup> heterojunction piezo-photonic system that exhibits high intensity, low activation threshold, and excellent self-powered ML performance. By tuning the molar ratio of MgO to MgF<sub>2</sub>, the optimized ML intensity enhances by ≈18 times. Kelvin probe force microscopy surface potential measurement reveals a significant built-in electric field at MgF<sub>2</sub>:Cr<sup>3+</sup> heterojunction interface. Based on the first-principle calculation results, the excellent ML performance originates from the offset of the valence band and the conduction band in the MgO/MgF<sub>2</sub>:Cr<sup>3+</sup> heterostructure and the narrowing of the band gap, which significantly improve the electron (4.09 × 10<sup>2 </sup>cm<sup>2 </sup>V<sup>-1</sup> s<sup>-1</sup>) and hole (4.62 × 10<sup>2 </sup>cm<sup>2 </sup>V<sup>-1</sup> s<sup>-1</sup>) mobility, thereby boosting charge transfer and recombination processes. This study provides a strategy for designing high-performance self-powered NIR ML materials based on interfacial effects, offering insights into their expanded applications in the potential bio stress related biological field.