Wu Xiaohan, Cao Mengmeng, Han Congcong, Zhang Jinyi, Li Xiangrong, Wan Jieqiong
College of Chemistry and Chemical Engineering, Shanghai University of Engineering Science, Shanghai 201620, China.
Polymers (Basel). 2024 Aug 23;16(17):2389. doi: 10.3390/polym16172389.
Rare earth and transition metal ion-doped CaZnOS has garnered significant attention for its exceptional mechanoluminescence (ML) performance under mild mechanical stimuli and its capability for multicolor emissions. Since powdered phosphors are not directly usable, they require encapsulation within with polymers to create stable structures. This study investigates Mn-doped CaZnOS (CaZnOS:Mn) as the ML phosphor, optimizing its performance by varying the Mn content, resulting in bright orange-red emissions from the d-d transitions of the Mn activator. A quantum efficiency of 59.08% was achieved through the self-sensitization of the matrix lattice and energy transfer to the Mn luminescent centers. The enhancement in ML due to Mn doping is attributed to the reduced trap depth and increased trap concentration. Encapsulation with four polymers-PDMS, PU, SIL, and RTV-2-was explored to further optimize ML performance. Among these, PDMS provides the best ML output and sensitivity, owing to its slightly cross-linked structure and good triboelectric properties. The optimized CaZnOS:0.03Mn/PDMS composite, featuring excellent flexibility and recoverability, shows great potential for applications in anti-counterfeiting encryption, stress sensors, and wearable devices.
稀土和过渡金属离子掺杂的CaZnOS因其在温和机械刺激下出色的机械发光(ML)性能以及多色发射能力而备受关注。由于粉末状磷光体不能直接使用,它们需要用聚合物封装以形成稳定结构。本研究考察了掺杂Mn的CaZnOS(CaZnOS:Mn)作为ML磷光体,通过改变Mn含量来优化其性能,从而实现Mn激活剂d-d跃迁产生的亮橙红色发射。通过基质晶格的自敏化和向Mn发光中心的能量转移,实现了59.08%的量子效率。Mn掺杂导致的ML增强归因于陷阱深度的降低和陷阱浓度的增加。研究了用四种聚合物——聚二甲基硅氧烷(PDMS)、聚氨酯(PU)、硅橡胶(SIL)和室温硫化硅橡胶(RTV-2)进行封装,以进一步优化ML性能。其中,PDMS由于其轻微交联的结构和良好的摩擦电性能,提供了最佳的ML输出和灵敏度。优化后的CaZnOS:0.03Mn/PDMS复合材料具有优异的柔韧性和可恢复性,在防伪加密、应力传感器和可穿戴设备等应用中显示出巨大潜力。