Key Laboratory of Optoelectronic Materials Chemistry and Physics, Fujian Institute of Research on the Structure of Matter, Chinese Academy of Sciences, Fuzhou, Fujian 350002, China.
Nanoscale. 2012 Aug 7;4(15):4485-91. doi: 10.1039/c2nr30794d. Epub 2012 May 21.
KLaF(4), as a good host matrix for trivalent lanthanide (Ln(3+)) ions to fabricate upconversion (UC) or downconversion (DC) phosphors, has been rarely reported. Herein, monodisperse (∼10 nm) cubic-phase Ln(3+)-doped KLaF(4) nanocrystals (NCs) were synthesized via a facile thermal decomposition method. Upon excitation at 980 nm, UC luminescence properties of KLaF(4):Ln(3+)/Yb(3+) (Ln = Tm, Ho, Er) NCs were comprehensively surveyed. Particularly, after coating an inert KLaF(4) shell, the green and red UC luminescence intensity of KLaF(4):Er(3+)/Yb(3+) NCs was enhanced ∼35 times, and the corresponding UC lifetimes of (4)S(3/2) and (4)F(9/2) levels of Er(3+) were observed significantly prolonged from 42 and 68 μs in core-only NCs to 87 and 136 μs in core/shell counterparts. Furthermore, intense DC luminescence was also achieved in Ce(3+)/Tb(3+) and Eu(3+) doped KLaF(4) NCs, with absolute quantum yields of 39.8% (Tb(3+)) and 17.3% (Eu(3+)). The luminescence lifetimes of (5)D(0) (Eu(3+)) and (5)D(4) (Tb(3+)) were determined to be 4.2 and 4.7 ms, respectively. Water-soluble Ln(3+)-doped KLaF(4) NCs featuring excellent monodispersion, long luminescence lifetime, and high UC/DC efficiency may have versatile and promising applications as luminescent nano-biolabels.
KLaF(4)作为一种用于制备上转换(UC)或下转换(DC)荧光粉的三价镧系元素(Ln(3+))的良好主体基质,很少有报道。在此,通过简单的热分解方法合成了具有单分散性(约 10nm)的立方相 Ln(3+)-掺杂 KLaF(4)纳米晶体(NCs)。在 980nm 激发下,全面研究了 KLaF(4):Ln(3+)/Yb(3+)(Ln=Tm、Ho、Er)NCs 的 UC 发光性能。特别是,在包覆惰性 KLaF(4)壳后,KLaF(4):Er(3+)/Yb(3+)NCs 的绿光和红光 UC 发光强度增强了约 35 倍,并且观察到 Er(3+)的(4)S(3/2)和(4)F(9/2)能级的相应 UC 寿命从纯核 NCs 中的 42 和 68μs 显著延长至核/壳对照物中的 87 和 136μs。此外,Ce(3+)/Tb(3+)和 Eu(3+)掺杂 KLaF(4)NCs 中也实现了强烈的 DC 发光,Tb(3+)的绝对量子产率为 39.8%,Eu(3+)的为 17.3%。确定(5)D(0)(Eu(3+))和(5)D(4)(Tb(3+))的荧光寿命分别为 4.2ms 和 4.7ms。具有优异的单分散性、长荧光寿命和高 UC/DC 效率的水溶性 Ln(3+)-掺杂 KLaF(4)NCs 可能作为发光纳米生物标记物具有广泛而有前途的应用。