TY - JOUR
T1 - Triadic photonic orchestration in self-reducing aluminoborate glass phosphors for synergistic primary presentation and configurable spectral encoding
AU - Hu, Maosen
AU - Yu, Zhimin
AU - Zhang, Yuhang
AU - Dong, Xiaolong
AU - Li, Desheng
AU - Pun, Edwin Yue Bun
AU - Lin, Hai
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2026/1/15
Y1 - 2026/1/15
N2 - Driven by the escalating demand for next-generation materials in high-security encryption, glass-based luminescent systems featuring primary-color emissions and programmable energy transfer (ET) channels are expected to serve as fascinating solutions to these challenges. Herein, a rational compositional design endows the aluminoborate glass host with self-reducing properties, attributed to the abundant low-polymerization [BO3] groups with numerous negative charges. In addition, EPR measurements confirm that the [VΖn]′′ vacancy defects facilitate the reduction of Eu3+, leading to a stable Eu2+/Eu3+ system with differentiated Eu2+ active centers, exhibiting a tunable blue/red primary-color emission. Incorporating Tb3+ generates bright green luminescence and induces triadic photonic orchestration (TPO) through interlaced ET channels among Eu2+, Eu3+ and Tb3+, enabling the synergistic presentation of three-primary colors. Furthermore, the exposures of quantum yield and J-O parameters further demonstrate high luminescence efficiency and color purity, validating its remarkable potential for practical applications. In addition, concentration/excitation-triggered selective ET channels are achieved through TPO, innovatively demonstrating the feasibility of configurable spectral encoding, thereby establishing a multilevel encryption magic cube with high robustness and security. Such TPO-modulated synergistic primary presentation based on self-reducing aluminoborate glass phosphors pioneers a prospective material design framework for economical and eco-friendly multifunctional materials, with promising applications not only in advanced optical encryption but also in white lighting and spatial dynamic imaging.
AB - Driven by the escalating demand for next-generation materials in high-security encryption, glass-based luminescent systems featuring primary-color emissions and programmable energy transfer (ET) channels are expected to serve as fascinating solutions to these challenges. Herein, a rational compositional design endows the aluminoborate glass host with self-reducing properties, attributed to the abundant low-polymerization [BO3] groups with numerous negative charges. In addition, EPR measurements confirm that the [VΖn]′′ vacancy defects facilitate the reduction of Eu3+, leading to a stable Eu2+/Eu3+ system with differentiated Eu2+ active centers, exhibiting a tunable blue/red primary-color emission. Incorporating Tb3+ generates bright green luminescence and induces triadic photonic orchestration (TPO) through interlaced ET channels among Eu2+, Eu3+ and Tb3+, enabling the synergistic presentation of three-primary colors. Furthermore, the exposures of quantum yield and J-O parameters further demonstrate high luminescence efficiency and color purity, validating its remarkable potential for practical applications. In addition, concentration/excitation-triggered selective ET channels are achieved through TPO, innovatively demonstrating the feasibility of configurable spectral encoding, thereby establishing a multilevel encryption magic cube with high robustness and security. Such TPO-modulated synergistic primary presentation based on self-reducing aluminoborate glass phosphors pioneers a prospective material design framework for economical and eco-friendly multifunctional materials, with promising applications not only in advanced optical encryption but also in white lighting and spatial dynamic imaging.
KW - Configurable spectral encoding
KW - Dynamic ET channels
KW - Eu/Eu/Tb tri-doped glasses
KW - Synergistic primary presentation
KW - Triadic photonic orchestration
UR - https://www.scopus.com/pages/publications/105024349632
U2 - 10.1016/j.jallcom.2025.185402
DO - 10.1016/j.jallcom.2025.185402
M3 - 文章
AN - SCOPUS:105024349632
SN - 0925-8388
VL - 1050
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 185402
ER -