Stopikowska Natalia, Runowski Marcin, Woźny Przemysław, Lis Stefan, Du Peng
Department of Rare Earths, Faculty of Chemistry, Adam Mickiewicz University, Uniwersytetu Poznańskiego 8, 61-614 Poznań, Poland.
Departamento de Física, Universidad de La Laguna, Apartado de Correos 456, E-38200 San Cristóbal de La Laguna, Spain.
Nanomaterials (Basel). 2022 Feb 26;12(5):799. doi: 10.3390/nano12050799.
Materials that generate pure, single-color emission are desirable in the development and manufacturing of modern optoelectronic devices. This work shows the possibility of generating pure, green up-conversion luminescence upon the excitation of Er-doped nanomaterials with a 785 nm NIR laser. The up-converting inorganic nanoluminophores YVO: Er and YVO: Yb and Er were obtained using a hydrothermal method and subsequent calcination. The synthesized vanadate nanomaterials had a tetragonal structure and crystallized in the form of nearly spherical nanoparticles. Up-conversion emission spectra of the nanomaterials were measured using laser light sources with λ = 785 and 975 nm. Importantly, under the influence of the mentioned laser irradiation, the as-prepared samples exhibited bright green up-conversion luminescence that was visible to the naked eye. Depending on the dopant ions used and the selected excitation wavelengths, two (green) or three (green and red) bands originating from erbium ions appeared in the emission spectra. In this way, by changing the UC mechanisms, pure green luminescence of the material can be obtained. The proposed strategy, in combination with various single-doped UC nanomaterials activated with Er, might be beneficial for modern optoelectronics, such as light-emitting diodes with a rich color gamut for back-light display applications.
在现代光电器件的开发和制造中,需要能产生纯单色发射的材料。这项工作展示了用785 nm近红外激光激发掺铒纳米材料产生纯绿色上转换发光的可能性。采用水热法和后续煅烧得到了上转换无机纳米发光体YVO:Er和YVO:Yb及Er。合成的钒酸盐纳米材料具有四方结构,以近球形纳米颗粒的形式结晶。使用波长λ = 785和975 nm的激光光源测量了纳米材料的上转换发射光谱。重要的是,在上述激光照射的影响下,所制备的样品呈现出肉眼可见的亮绿色上转换发光。根据所使用的掺杂离子和选定的激发波长,发射光谱中出现了两条(绿色)或三条(绿色和红色)源自铒离子的谱带。通过这种方式,改变上转换机制,可以获得材料的纯绿色发光。所提出的策略与各种用铒激活的单掺杂上转换纳米材料相结合,可能对现代光电子学有益,例如用于背光显示应用的具有丰富色域的发光二极管。