Feng Ang, Smet And Philippe F
LumiLab, Department of Solid State Sciences, Ghent University, Krijgslaan 281-S1, 9000 Ghent, Belgium.
Center for Nano- and Biophotonics (NB Photonics), Ghent University, 9000 Ghent, Belgium.
Materials (Basel). 2018 Mar 23;11(4):484. doi: 10.3390/ma11040484.
Mechanoluminescence (ML) is the non-thermal emission of light as a response to mechanical stimuli on a solid material. While this phenomenon has been observed for a long time when breaking certain materials, it is now being extensively explored, especially since the discovery of non-destructive ML upon elastic deformation. A great number of materials have already been identified as mechanoluminescent, but novel ones with colour tunability and improved sensitivity are still urgently needed. The physical origin of the phenomenon, which mainly involves the release of trapped carriers at defects with the help of stress, still remains unclear. This in turn hinders a deeper research, either theoretically or application oriented. In this review paper, we have tabulated the known ML compounds according to their structure prototypes based on the connectivity of anion polyhedra, highlighting structural features, such as framework distortion, layered structure, elastic anisotropy and microstructures, which are very relevant to the ML process. We then review the various proposed mechanisms and corresponding mathematical models. We comment on their contribution to a clearer understanding of the ML phenomenon and on the derived guidelines for improving properties of ML phosphors. Proven and potential applications of ML in various fields, such as stress field sensing, light sources, and sensing electric (magnetic) fields, are summarized. Finally, we point out the challenges and future directions in this active and emerging field of luminescence research.
机械发光(ML)是固体材料对机械刺激作出响应而产生的非热发光现象。虽然在破坏某些材料时很早就观察到了这种现象,但现在它正受到广泛探索,特别是自发现弹性变形时的无损机械发光以来。大量材料已被确定为具有机械发光特性,但仍迫切需要具有颜色可调性和更高灵敏度的新型材料。该现象的物理起源主要涉及在应力作用下缺陷处捕获载流子的释放,目前仍不清楚。这反过来又阻碍了在理论或应用方面的深入研究。在这篇综述论文中,我们根据阴离子多面体的连接性,按照结构原型将已知的机械发光化合物制成表格,突出了与机械发光过程密切相关的结构特征,如骨架畸变、层状结构、弹性各向异性和微观结构。然后我们综述了各种提出的机制和相应的数学模型。我们评论了它们对更清晰理解机械发光现象的贡献以及对改进机械发光磷光体性能的指导方针。总结了机械发光在应力场传感、光源以及传感电场(磁场)等各个领域已证实的和潜在的应用。最后,我们指出了这个活跃且新兴的发光研究领域中的挑战和未来方向。