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Tuning Mechanoluminescence From Red to Near‐Infrared Light in CaZnOS:Mn <sup>2+</sup>

Hongzhen Liu, Yuhe Shao, Chao Dou, Jing Zhao, Zhen Song, Quanlin Liu

2025Advanced Optical Materials10 citationsDOIOpen Access PDF

Abstract

Abstract Mechanoluminescence (ML) materials can convert mechanical energy into photoelectrons and have significant potential for applications in intelligent sensing, self‐driven luminescent displays, and human‐computer interaction. Among the numerous ML systems, Mn 2+ ‐doped wurtzite‐based phosphors have become a prominent ML family. However, their ML emissions are typically confined to visible light, which substantially limits their utility in fields such as biomechanics and bioimaging. Here, it is demonstrated that the photoluminescence (PL) and ML emission of CaZnOS:Mn 2+ can be tuned from the red to near‐infrared light (peaked at 770 nm) by regulating the Mn 2+ ion concentration. The electronic paramagnetic resonance, PL lifetime, and various spectra reveal that the near‐infrared emission originates from the enhanced magnetic interaction of Mn 2+ pairs due to intrinsic defects. The heavy Mn 2+ ‐doped CaZnOS elastomer with near‐infrared ML emission exhibits distinct advantages over low Mn 2+ ‐doped CaZnOS with only red emission in the field of biomechanical imaging. This work achieves near‐infrared emission in CaZnOS phosphors singly doped with Mn 2+ ions for the first time, providing a perspective for spectra broadening of Mn 2+ ions‐doped phosphors.

Topics & Concepts

MechanoluminescenceMaterials scienceInfraredOptical materialsOpticsOptoelectronicsPhosphorPhysicsLuminescence Properties of Advanced MaterialsLuminescence and Fluorescent MaterialsNanoplatforms for cancer theranostics
Tuning Mechanoluminescence From Red to Near‐Infrared Light in CaZnOS:Mn <sup>2+</sup> | Litcius