Analytical & Testing Centre, Sichuan University, Chengdu, 610064, China.
College of Chemistry and Chemical Engineering, China West Normal University, Nanchong, 637009, China.
Nanoscale. 2023 Jul 13;15(27):11582-11591. doi: 10.1039/d3nr01994b.
Real-time acquisition of the morphological information of nanomaterials is crucial to achieving morphological controllable synthesis, albeit being challenging. A novel device was designed, which integrated dielectric barrier discharge (DBD) plasma synthesis and simultaneous spectral monitoring of the formation of metal-organic frameworks (MOFs). Important dynamic luminescence behaviors such as coordination induced emission (CIE), antenna effect (AE), and red-blue shift were continuously captured to reveal the spectral emission mechanism and energy transfer progress and verify the correlation with the morphological evolution of the MOFs. The prediction and control of morphology were successfully achieved with Eu(TCPP) as a model MOF. The proposed method will shed new light on exploring the spectral emission mechanism, energy conversion and morphology monitoring of other luminescent materials.
实时获取纳米材料的形态信息对于实现形态可控合成至关重要,但这极具挑战性。本研究设计了一种新颖的装置,将介质阻挡放电(DBD)等离子体合成与金属有机骨架(MOFs)形成的同时光谱监测集成在一起。连续捕获重要的动态发光行为,如配位诱导发射(CIE)、天线效应(AE)和红蓝位移,以揭示光谱发射机制和能量传递进展,并验证与 MOFs 形态演变的相关性。以 Eu(TCPP) 为模型 MOF,成功实现了对形态的预测和控制。该方法将为探索其他发光材料的光谱发射机制、能量转换和形态监测提供新的思路。