Dynamic multicolor emissions of multimodal phosphors by Mn2+ trace doping in self-activated CaGa4O7

Yiqian Tang, Yiyu Cai, Kunpeng Dou, Jianqing Chang, Wei Li, Shanshan Wang, Mingzi Sun, Bolong Huang*, Xiaofeng Liu, Jianrong Qiu, Lei Zhou, Mingmei Wu, Jun-Cheng Zhang*

*Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

58 Citations (Scopus)
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Abstract

The manipulation of excitation modes and resultant emission colors in luminescent materials holds pivotal importance for encrypting information in anti-counterfeiting applications. Despite considerable achievements in multimodal and multicolor luminescent materials, existing options generally suffer from static monocolor emission under fixed external stimulation, rendering them vulnerability to replication. Achieving dynamic multimodal luminescence within a single material presents a promising yet challenging solution. Here, we report the development of a phosphor exhibiting dynamic multicolor photoluminescence (PL) and photo-thermo-mechanically responsive multimodal emissions through the incorporation of trace Mn2+ ions into a self-activated CaGa4O7 host. The resulting phosphor offers adjustable emission-color changing rates, controllable via re-excitation intervals and photoexcitation powers. Additionally, it demonstrates temperature-induced color reversal and anti-thermal-quenched emission, alongside reproducible elastic mechanoluminescence (ML) characterized by high mechanical durability. Theoretical calculations elucidate electron transfer pathways dominated by intrinsic interstitial defects and vacancies for dynamic multicolor emission. Mn2+ dopants serve a dual role in stabilizing nearby defects and introducing additional defect levels, enabling flexible multi-responsive luminescence. This developed phosphor facilitates evolutionary color/pattern displays in both temporal and spatial dimensions using readily available tools, offering significant promise for dynamic anticounterfeiting displays and multimode sensing applications. © The Author(s) 2024.
Original languageEnglish
Article number3209
JournalNature Communications
Volume15
Issue number1
Online published13 Apr 2024
DOIs
Publication statusPublished - 1 Dec 2024
Externally publishedYes

Funding

J.-C.Z. acknowledges support from the National Natural Science Foundations of China (grant nos. 11774189 and 12374387), the Taishan Scholar Program (grant no. tsqn202211057), the Natural Science Foundation of Shandong Province (grant no. ZR2023MA075), and Fundamental Research Funds for the Central Universities (grant nos. 209202141002 and 202364006). M.W. and J.-C.Z acknowledge support from the National Natural Science Foundations of China (grant no. U22A20135). B.H. acknowledges support from the National Natural Science Foundation of China/Research Grant Council of Hong Kong Joint Research Scheme (grant no. N_PolyU502/21), National Natural Science Foundation of China/Research Grants Council of Hong Kong Collaborative Research Scheme (grant no. CRS_PolyU504/22), the funding for Projects of Strategic Importance of The Hong Kong Polytechnic University (grant no. 1-ZE2V), Shenzhen Fundamental Research Scheme-General Program (grant no. JCYJ20220531090807017), the Natural Science Foundation of Guangdong Province (grant no. 2023A1515012219) and Departmental General Research Fund of The Hong Kong Polytechnic University (grant no. ZVUL). S.W. acknowledges support from the National Natural Science Foundations of China (grant no. 62375248). B.H. thanks the support from Research Center for Carbon-Strategic Catalysis (RC-CSC), Research Institute for Smart Energy (RISE), and Research Institute for Intelligent Wearable Systems (RI-IWEAR) of the Hong Kong Polytechnic University.

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