Institute of Modern Optics & Tianjin Key Laboratory of Micro-Scale Optical Information Science and Technology, Nankai University, Tianjin, 300071, China.
Institute of Photoelectric Thin Film Devices and Technology, College of Electronic Information and Optical Engineering, Nankai University, Tianjin, 300350, China.
Small. 2023 Feb;19(8):e2207089. doi: 10.1002/smll.202207089. Epub 2022 Dec 11.
Mechanoluminescence (ML) materials present widespread applications. Empirically, modulation for a given ML material is achieved by application of programmed mechanical actuation with different amplitude, repetition velocity and frequency. However, to date modulation on the ML is very limited within several to a few hundred hertz low-frequency actuation range, due to the paucity of high-frequency mechanical excitation apparatus. The universality of temporal behavior and frequency response is an important aspect of ML phenomena, and serves as the impetus for much of its applications. Here, we push the study on ML into high-frequency range (∼250 kHz) by combining with piezoelectric actuators. Two representative ML ZnS:Mn and ZnS:Cu, Al phosphors were chosen as the research objects. Time-resolved ML of ZnS:Mn and ZnS:Cu, Al shows unrevealed frequency-dependent saturation and quenching, which is associated with the dynamic processes of traps. From the point of applications, this study sets the cut-off frequency for ML sensing. Moreover, by in-situ tuning the strain frequency, ZnS:Mn exhibits reversible frequency-induced broad red-shift into near-infrared range. These findings offer keen insight into the photophysics nature of ML and also broaden the physical modulation of ML by locally adjusting the excitation frequency.
力学发光(ML)材料具有广泛的应用。经验上,通过对给定 ML 材料施加不同幅度、重复速度和频率的程序机械激励来实现调制。然而,由于缺乏高频机械激励装置,到目前为止,ML 的调制非常有限,只能在几到几百赫兹的低频激励范围内进行。时间行为和频率响应的普遍性是 ML 现象的一个重要方面,也是其许多应用的动力。在这里,我们通过结合压电致动器将 ML 研究推向高频范围(∼250 kHz)。选择两种代表性的 ML ZnS:Mn 和 ZnS:Cu,Al 荧光粉作为研究对象。ZnS:Mn 和 ZnS:Cu,Al 的时间分辨 ML 显示出未揭示的频率相关饱和和猝灭,这与陷阱的动态过程有关。从应用的角度来看,本研究为 ML 传感设定了截止频率。此外,通过原位调整应变频率,ZnS:Mn 表现出可逆的频率诱导近红外宽频移。这些发现为 ML 的光物理性质提供了深刻的见解,并通过局部调整激励频率拓宽了 ML 的物理调制。