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Highly Efficient Manganese Bromides with Reversible Luminescence Switching through Amorphous-Crystalline Transition
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Highly Efficient Manganese Bromides with Reversible Luminescence Switching through Amorphous-Crystalline Transition

G.-H. Tan, H.-C. Lin, H.-C. Liang, C.-W. Pao, P.-Y. Chen, W.-T. Chuang, C.-A. Hsieh, D.M. Dorrah, M.-C. Li, L.-Y. Chen, …
ACS Applied Materials and Interfaces, 卷.16(41)
2024
Web of Science ID: WOS:001328632100001

摘要

manganese(II) bromides reversible luminescence switching stimuli-responsive materials time−temperature indicator X-ray scintillator Atomic emission spectroscopy II-VI semiconductors Layered semiconductors Light sensitive materials Luminescence of solids Luminous materials Manganese compounds Scintillation Scintillation counters X ray apparatus bromide halide lanthanide manganese Amorphous state Crystalline transition Luminescence switching Manganese(II) bromide Optoelectronic applications Reversible luminescence switching Stimuli-responsive materials Stimulus-responsive materials Time-temperature indicators X-ray scintillator article controlled study electric potential kinetics limit of detection luminescence pea room temperature scintillation temperature indicator X ray X ray analysis Crystalline materials
While luminescent stimuli-responsive materials (LSRMs) have become one of the most sought-after materials owing to their potential in optoelectronic applications, the use of earth-scarce lanthanides remains a crucial problem to be solved for further development. In this work, two manganese-based LSRMs, (R)-(+)-1-phenylethylammonium manganese bromide, (R-PEA)2MnBr4, and (S)-(−)-1-phenylethylammonium manganese bromide, (S-PEA)2MnBr4, are successfully demonstrated. Both (R-PEA)2MnBr4 and (S-PEA)2MnBr4 show a kinetically stable red-emissive amorphous state and a thermodynamically stable green-emissive crystalline state at room temperature, where the fully reversible transition can be done through melt-quenching and annealing processes. Based on this property, a reusable manganese-halide-based time-temperature indicator is demonstrated for the first time. Furthermore, an X-ray scintillator with a low limit of detection (18.1 nGy/s) and a high spatial resolution limit (30.0 lp/mm) are achieved by exploiting the high transparency of amorphous states. These results uncover the multifunctionality of manganese halides and pave the way for upcoming research. © 2024 The Authors. Published by American Chemical Society.

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url
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85206250069&doi=10.1021%2facsami.4c09396&partnerID=40&md5=8aac94959daf92b299cfffc3733d67a6檢視
url
https://doi.org/10.1021/acsami.4c09396檢視
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合作類型
機構合作
引用書目主題
2 Chemistry
2.298 Perovskite Solar Cells
2.298.761 Perovskite Solar Materials
Web Of Science研究領域
Materials Science, Multidisciplinary
Nanoscience & Nanotechnology
ESI研究領域
Materials Science

聯合國永續發展目標(SDGs)

此研究成果有助於達成以下目標:

#7 Affordable and Clean Energy

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