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Visible-to-Near-Infrared Mechanoluminescence in Bi-Activated Spinel Compounds for Multiple Information Anticounterfeiting.
Chen, Zhicong; Shao, Peishan; Xiong, Puxian; Xiao, Yao; Liu, Bingjun; Wang, Zhiduo; Wu, Sheng; Jiang, Dongliang; Chen, Kang; Gan, Jiulin; Chen, Dongdan; Yang, Zhongmin.
Afiliación
  • Chen Z; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Shao P; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Xiong P; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Xiao Y; Department of Electrical and Electronic Engineering, The University of Hong Kong, Hong Kong 999077, China.
  • Liu B; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Wang Z; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Wu S; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Jiang D; School of Physics and Telecommunication Engineering; Guangdong Provincial Key Laboratory of Quantum Engineering and Quantum Materials; Guangdong Engineering Technology Research Center of Efficient Green Energy and Environmental Protection Materials; Guangdong-Hong Kong Joint Laboratory of Quantum Ma
  • Chen K; School of Applied Physics and Materials, Wuyi University, Jiangmen 529000, China.
  • Gan J; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Chen D; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
  • Yang Z; School of Physics and Optoelectronics; School of Materials Science and Engineering; Guangdong Provincial Key Laboratory of Fiber Laser Materials and Applied Techniques; Guangdong Engineering Technology Research and Development Center of Special Optical Fiber Materials and Devices; State Key Laborato
ACS Appl Mater Interfaces ; 16(27): 35279-35292, 2024 Jul 10.
Article en En | MEDLINE | ID: mdl-38935739
ABSTRACT
Mechanoluminescence (ML) is the nonthermal luminescence generated in the process of force-to-light conversion, which has broad prospects in stress sensing, wearable devices, biomechanics, and multiple information anticounterfeiting. Multivalence emitter ions utilize their own self-reduction process to realize multiband ML without introducing another dopant, such as Eu3+/Eu2+, Sm3+/Sm2+, and Mn4+/Mn2+. However, self-reduction-induced ML in bismuth-activated materials has rarely been reported so far. In this work, a novel visible-to-near-infrared (vis-NIR) ML induced by the self-reduction of Bi3+ to Bi2+ in the spinel-type compound (MgGa2O4) is reported. The photoluminescence (PL) spectra, PL excitation (PLE) spectra, and PL lifetime curves demonstrate that Bi3+/Bi2+ ions are the main luminescence centers. Notably, the possible self-reduction model is proposed, where a magnesium vacancy (VMg″) is considered as the driving force for the self-reduction of Bi3+ to Bi2+. Furthermore, an oxygen vacancy (VO••) is confirmed by electron paramagnetic resonance (EPR) spectroscopy. Combined with thermoluminescence (TL) glow curves and ML spectra, a plausible trap-controlled ML mechanism is illustrated, where electron-hole (VO••/VMg″) pairs play a significant role in capturing electrons and holes. It is worth noting that the proof-of-concept dual-mode electronic signature application is implemented based on the flexible ML film, which improves the capabilities of signature anticounterfeiting for high-level security applications. Besides, multistimulus-responsive luminescence behaviors of the ML film are realized under the excitation of a 254 nm UV lamp, thermal disturbance, 980 nm laser, and mechanical stimuli. In general, this study provides new insights into designing vis-NIR ML materials toward wider application possibilities.
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Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: ACS Appl Mater Interfaces Asunto de la revista: BIOTECNOLOGIA / ENGENHARIA BIOMEDICA Año: 2024 Tipo del documento: Article

Texto completo: 1 Banco de datos: MEDLINE Idioma: En Revista: ACS Appl Mater Interfaces Asunto de la revista: BIOTECNOLOGIA / ENGENHARIA BIOMEDICA Año: 2024 Tipo del documento: Article