Ma Zhiwei, Yang Songrui, Shi Yue, Fu Yuan, Wang Kai, Xiao Guanjun, Zou Bo
State Key Laboratory of Superhard Materials, College of Physics, Jilin University, Changchun, 130012, China.
Shandong Key Laboratory of Optical Communication Science and Technology, School of Physics Science and Information Technology, Liaocheng University, Liaocheng, 252000, China.
Angew Chem Int Ed Engl. 2024 Jul 29;63(31):e202406015. doi: 10.1002/anie.202406015. Epub 2024 May 23.
Piezochromic materials refer to a class of matters that alter their photoluminescence (PL) colors in response to the external stimuli, which exhibit promising smart applications in anti-counterfeiting, optoelectronic memory and pressure-sensing. However, so far, most reported piezochromic materials have been confined to organic materials or hybrid materials containing organic moieties with limited piezochromic range of less than 100 nm in visible region. Here, we achieved an intriguing piezochromism in all-inorganic zero-dimensional (0D) CsCuCl nanocrystals (NCs) with a considerable piezochromic range of 232 nm because of their unique inorganic rigid structure. The PL energy shifted from the lowest-energy red fluorescence (1.85 eV) to the highest-energy blue fluorescence (2.83 eV), covering almost the entire visible wavelength range. Pressure-modulated self-trapped exciton emission between different energy levels of self-trapped states within CsCuCl NCs was the main reason for this piezochromism property. Note that the quenched emission, which is over five times more intense than that in the initial state, is retained under ambient conditions upon decompression. This work provides a promising pressure indicating material, particularly used in pressure stability monitoring for equipment working at extreme environments.
压致变色材料是指一类在外部刺激下改变其光致发光(PL)颜色的物质,在防伪、光电记忆和压力传感等方面展现出有前景的智能应用。然而,到目前为止,大多数报道的压致变色材料局限于有机材料或含有有机部分的杂化材料,其在可见光区域的压致变色范围有限,小于100纳米。在此,我们在全无机零维(0D)CsCuCl纳米晶体(NCs)中实现了一种有趣的压致变色现象,由于其独特的无机刚性结构,具有232纳米的可观压致变色范围。PL能量从最低能量的红色荧光(1.85电子伏特)转移到最高能量的蓝色荧光(2.83电子伏特),几乎覆盖了整个可见波长范围。CsCuCl NCs内自陷态不同能级之间的压力调制自陷激子发射是这种压致变色特性的主要原因。值得注意的是,在减压后,比初始状态强五倍以上的猝灭发射在环境条件下得以保留。这项工作提供了一种有前景的压力指示材料,特别用于极端环境下设备的压力稳定性监测。