TY - JOUR
T1 - Forced Intergrowth of NaYS2 Phase in Sulfur-Rich Environments with Fluorescence Remodeling of Upscaled Full-Spectrum
AU - Zhao, Wenhua
AU - Shen, Lifan
AU - Liu, Wenhui
AU - Wang, Yichao
AU - Chen, Baojiu
AU - Pun, Edwin Yue Bun
AU - Lin, Hai
N1 - Publisher Copyright:
© 2024 Wiley-VCH GmbH.
PY - 2024/10/15
Y1 - 2024/10/15
N2 - Optimization of the host lattice is a novel strategy to achieve efficient up-conversion luminescence (UCL) with multi-peak full-spectrum emission. Herein, lattice optimization is performed in a non-vacuum sulfur-rich environment, where the ultra-low phonon energy NaYS2 heterogeneous phase is forced to intergrow, which overcomes the limitations of the conventional vacuum preparation method and achieves high-efficient UCL. Remarkably, the lattice sites are preferentially occupied by S2−, which causes lattice distortion and generates layered NaYS2/Y2O2S hybrid crystalline with high inversion asymmetry to reconfigure excitation mechanism and exhibit distinct luminescence centers at the multi-peak full-spectrum. Moreover, owing to longer lifetime of excited state energy levels of Er3+ after lattice modification and ordered segregation of Er3+ in the YS6 layer restricting the negative energy exchange process, the luminescence intensity is increased by about six times, and the remodeling of full-spectrum-efficient UCLs is realized. This work reports an innovative approach for lattice optimization and a facile preparation of ternary sulfides, which provides a new direction for achieving highly efficient UCLs with promising applications in biomedical imaging, near-infrared detection, and temperature sensing synergy.
AB - Optimization of the host lattice is a novel strategy to achieve efficient up-conversion luminescence (UCL) with multi-peak full-spectrum emission. Herein, lattice optimization is performed in a non-vacuum sulfur-rich environment, where the ultra-low phonon energy NaYS2 heterogeneous phase is forced to intergrow, which overcomes the limitations of the conventional vacuum preparation method and achieves high-efficient UCL. Remarkably, the lattice sites are preferentially occupied by S2−, which causes lattice distortion and generates layered NaYS2/Y2O2S hybrid crystalline with high inversion asymmetry to reconfigure excitation mechanism and exhibit distinct luminescence centers at the multi-peak full-spectrum. Moreover, owing to longer lifetime of excited state energy levels of Er3+ after lattice modification and ordered segregation of Er3+ in the YS6 layer restricting the negative energy exchange process, the luminescence intensity is increased by about six times, and the remodeling of full-spectrum-efficient UCLs is realized. This work reports an innovative approach for lattice optimization and a facile preparation of ternary sulfides, which provides a new direction for achieving highly efficient UCLs with promising applications in biomedical imaging, near-infrared detection, and temperature sensing synergy.
KW - fluorescence remodeling
KW - forced intergrowth
KW - lattice optimization
KW - NaYS/YOS hybrid crystalline
KW - vulcanization modification
UR - https://www.scopus.com/pages/publications/85198113384
U2 - 10.1002/adom.202401082
DO - 10.1002/adom.202401082
M3 - 文章
AN - SCOPUS:85198113384
SN - 2195-1071
VL - 12
JO - Advanced Optical Materials
JF - Advanced Optical Materials
IS - 29
M1 - 2401082
ER -