Mn2+-activated dual-wavelength emitting materials toward wearable optical fibre temperature sensor

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作者
Enhai Song
Meihua Chen
Zitao Chen
Yayun Zhou
Weijie Zhou
Hong-Tao Sun
Xianfeng Yang
Jiulin Gan
Shi Ye
Qinyuan Zhang
机构
[1] South China University of Technology,State Key Laboratory of Luminescent Material and Devices, and Guangdong Provincial Key Laboratory of Fibre Laser Materials and Applied Techniques, Guangdong Engineering Technology Research and Development Center of Spec
[2] National Institute for Materials Science (NIMS),International Center for Materials Nanoarchitectonics (MANA)
[3] South China University of Technology,Analytical and Testing Centre
[4] South China University of Technology,School of Physics and Optoelectronics
来源
Nature Communications | / 13卷
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摘要
Photothermal sensing is crucial for the creation of smart wearable devices. However, the discovery of luminescent materials with suitable dual-wavelength emissions is a great challenge for the construction of stable wearable optical fibre temperature sensors. Benefiting from the Mn2+-Mn2+ superexchange interactions, a dual-wavelength (530/650 nm)-emitting material Li2ZnSiO4:Mn2+ is presented via simple increasing the Mn2+ concentration, wherein the two emission bands have different temperature-dependent emission behaviours, but exhibit quite similar excitation spectra. Density functional theory calculations, coupled with extended X-ray absorption fine structure and electron-diffraction analyses reveal the origins of the two emission bands in this material. A wearable optical temperature sensor is fabricated by incorporating Li2ZnSiO4:Mn2+ in stretchable elastomer-based optical fibres, which can provide thermal-sensitive emissions at dual- wavelengths for stable ratiometric temperature sensing with good precision and repeatability. More importantly, a wearable mask integrated with this stretchable fibre sensor is demonstrated for the detection of physiological thermal changes, showing great potential for use as a wearable health monitor. This study also provides a framework for creating transition-metal-activated luminescence materials.
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