Department of Biomedical Engineering, School of Basic Medical Sciences, Guangzhou Medical University, Guangzhou, 511436, China.
School of Physics and Optoelectronic Engineering, Guangdong University of Technology, Guangzhou, 510 006, China.
Adv Mater. 2021 Apr;33(15):e2008722. doi: 10.1002/adma.202008722. Epub 2021 Feb 26.
Persistent-luminescence phosphors (PLPs) have a wide variety of applications in the fields of photonics and biophotonics due to their ultralong afterglow lifetime. However, the existing PLPs are charged and recharged with short-wavelength high-energy photons or inconvenient and potentially risky X-ray beams. To date, deep tissue penetrable NIR light has mainly been used for photostimulated afterglow emission, which continues to decay and weaken after each cycle, Herein, a new paradigm of trap energy upconversion-like near-infrared (NIR) to near-infrared light rejuvenateable persistent luminescence in bismuth-doped calcium stannate phosphors and nanoparticles is reported. In contrast to the existing PLPs and persistent-luminescence nanoparticles, the materials enable the occurrence of a reversed transition of the carriers from a deep-level energy trap to a shallow-level trap upon excitation by low-energy NIR photons. Thus these new materials can be charged circularly via deep-tissue penetrable NIR photons, which is unable to be done for existing PLPs, and emit afterglow signals. This conceptual work will lay the foundation to design new categories of NIR-absorptive-NIR-emissive PLPs and nanoparticles featuring physically harmless and deep tissue penetrable NIR light renewability and sets the stage for numerous biological applications, which have been limited by current materials.
持续发光荧光粉(PLP)由于其超长的余晖寿命,在光子学和生物光子学领域有广泛的应用。然而,现有的 PLP 是通过短波长高能光子或不方便且潜在危险的 X 射线束进行充电和再充电的。迄今为止,深层组织穿透的近红外光主要用于光激励余晖发射,每次循环后余晖都会持续衰减和减弱。在此,我们报告了一种新型的陷阱能量上转换类似的近红外(NIR)到近红外光可再激活的铋掺杂钙锡酸盐荧光粉和纳米颗粒中的近红外光可再激活的持续发光。与现有的 PLP 和持续发光纳米颗粒不同,该材料使得载流子从深能级陷阱到浅能级陷阱的反向跃迁能够在低能量近红外光子激发下发生。因此,这些新材料可以通过深层组织穿透的近红外光子进行循环充电,这是现有的 PLP 无法实现的,并且可以发出余晖信号。这项概念性工作将为设计新型的近红外吸收-近红外发射 PLP 和纳米颗粒奠定基础,这些材料具有物理无害和深层组织穿透的近红外光可再生性,为许多受限于现有材料的生物学应用铺平了道路。