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Published on: April 14, 2020
Tunable Broad Wavelength Emissions in Sn2+-Doped Zero-Dimensional All Inorganic K4CdCl6 via Rb+ Alloying
Yanjiao Zhang1,2, Pifu Gong3, Mingxing Chen4
1College of Petrochemical Engineering, Jilin University of Chemical Technology, Jilin132022, China.
Abstract:
Tunable fluorescence emission endows luminescent materials with immense applications in optoelectronic devices and information security. Herein, broad-wavelength photoluminescence (PL) tuning from yellow to white to blue is realized in a zero-dimensional (0D) K4CdCl6 halide via a facile Rb/Sn codoping strategy. Interestingly, K4CdCl6 and isostructural Rb4CdCl6 halides exhibit yellow and blue PL emissions via the homovalent doping of Sn2+, respectively. The relative intensity ratio of yellow and blue emission bands can be effectively regulated in K4CdCl6:Sn2+ halides by Rb+ alloying; accordingly, the continuous luminescence color tuning covering yellow, white, and blue spectral regions was successfully achieved. Density functional theory calculations further verify that the doping of Sn2+ leads to the appearance of an impurity energy level within the band gap, accelerates electronic transitions, and ultimately enhances PL emission efficiency. On the basis of this rationally designed tunable luminescent system, the three-level color-coded intelligent password devices, combining multimode optical anticounterfeiting and digital information encryption, were developed. This work not only develops a reliable ion doping strategy for luminescence modulation in the metal halides but also expands their diversified application prospects in advanced optoelectronic fields.

