Tang Yiqian, Cai Yiyu, Dou Kunpeng, Chang Jianqing, Li Wei, Wang Shanshan, Sun Mingzi, Huang Bolong, Liu Xiaofeng, Qiu Jianrong, Zhou Lei, Wu Mingmei, Zhang Jun-Cheng
College of Physics and Optoelectronic Engineering, Faculty of Information Science and Engineering, Ocean University of China, Qingdao, 266100, China.
Engineering Research Center of Advanced Marine Physical Instruments and Equipment of Education Ministry of China, and Key Laboratory of Optics and Optoelectronics of Qingdao, Ocean University of China, Qingdao, 266100, China.
Nat Commun. 2024 Apr 13;15(1):3209. doi: 10.1038/s41467-024-47431-0.
The manipulation of excitation modes and resultant emission colors in luminescent materials holds pivotal importance for encrypting information in anti-counterfeiting applications. Despite considerable achievements in multimodal and multicolor luminescent materials, existing options generally suffer from static monocolor emission under fixed external stimulation, rendering them vulnerability to replication. Achieving dynamic multimodal luminescence within a single material presents a promising yet challenging solution. Here, we report the development of a phosphor exhibiting dynamic multicolor photoluminescence (PL) and photo-thermo-mechanically responsive multimodal emissions through the incorporation of trace Mn ions into a self-activated CaGaO host. The resulting phosphor offers adjustable emission-color changing rates, controllable via re-excitation intervals and photoexcitation powers. Additionally, it demonstrates temperature-induced color reversal and anti-thermal-quenched emission, alongside reproducible elastic mechanoluminescence (ML) characterized by high mechanical durability. Theoretical calculations elucidate electron transfer pathways dominated by intrinsic interstitial defects and vacancies for dynamic multicolor emission. Mn dopants serve a dual role in stabilizing nearby defects and introducing additional defect levels, enabling flexible multi-responsive luminescence. This developed phosphor facilitates evolutionary color/pattern displays in both temporal and spatial dimensions using readily available tools, offering significant promise for dynamic anticounterfeiting displays and multimode sensing applications.
在发光材料中操控激发模式和产生的发射颜色对于防伪应用中的信息加密至关重要。尽管在多模态和多色发光材料方面取得了相当大的成就,但现有材料在固定外部刺激下通常会出现静态单色发射,这使得它们容易被复制。在单一材料中实现动态多模态发光是一个有前景但具有挑战性的解决方案。在此,我们报告了一种通过将痕量锰离子掺入自激活的CaGaO基质中而开发的荧光粉,该荧光粉表现出动态多色光致发光(PL)和光热机械响应多模态发射。所得荧光粉具有可调节的发射颜色变化速率,可通过再激发间隔和光激发功率进行控制。此外,它还表现出温度诱导的颜色反转和抗热猝灭发射,以及具有高机械耐久性的可重现弹性机械发光(ML)。理论计算阐明了由本征间隙缺陷和空位主导的电子转移途径导致动态多色发射。锰掺杂剂在稳定附近缺陷和引入额外缺陷能级方面发挥双重作用,实现灵活的多响应发光。这种开发的荧光粉使用现成的工具在时间和空间维度上促进了进化颜色/图案显示,为动态防伪显示和多模态传感应用提供了巨大的前景。