Large-Area Biocompatible Random Laser for Wearable Applications
Recently, wearable sensor technology has drawn attention to many health-related appliances due to its varied existing optical, electrical, and mechanical applications. Similarly, we have designed a simple and cheap lift-off fabrication technique for the realization of large-area biocompatible random...
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doaj-13668dca74874115b744b81173cb96402021-07-23T13:57:46ZengMDPI AGNanomaterials2079-49912021-07-01111809180910.3390/nano11071809Large-Area Biocompatible Random Laser for Wearable ApplicationsKun Ge0Dan Guo1Xiaojie Ma2Zhiyang Xu3Anwer Hayat4Songtao Li5Tianrui Zhai6Faculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, ChinaFaculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, ChinaFaculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, ChinaFaculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, ChinaFaculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, ChinaDepartment of Mathematics & Physics, North China Electric Power University, Baoding 071000, ChinaFaculty of Science, College of Physics and Optoelectronics, Beijing University of Technology, Beijing 100124, ChinaRecently, wearable sensor technology has drawn attention to many health-related appliances due to its varied existing optical, electrical, and mechanical applications. Similarly, we have designed a simple and cheap lift-off fabrication technique for the realization of large-area biocompatible random lasers to customize wearable sensors. A large-area random microcavity comprises a matrix element polymethyl methacrylate (PMMA) in which rhodamine B (RhB, which acts as a gain medium) and gold nanorods (Au NRs, which offer plasmonic feedback) are incorporated via a spin-coating technique. In regards to the respective random lasing device residing on a heterogenous film (area > 100 cm<sup>2</sup>), upon optical excitation, coherent random lasing with a narrow linewidth (~0.4 nm) at a low threshold (~23 μJ/cm<sup>2</sup> per pulse) was successfully attained. Here, we maneuvered the mechanical flexibility of the device to modify the spacing between the feedback agents (Au NRs), which tuned the average wavelength from 612.6 to 624 nm under bending while being a recoverable process. Moreover, the flexible film can potentially be used on human skin such as the finger to serve as a motion and relative-humidity sensor. This work demonstrates a designable and simple method to fabricate a large-area biocompatible random laser for wearable sensing.https://www.mdpi.com/2079-4991/11/7/1809random laserbiocompatiblelarge-areapolymer filmwearable |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Kun Ge Dan Guo Xiaojie Ma Zhiyang Xu Anwer Hayat Songtao Li Tianrui Zhai |
spellingShingle |
Kun Ge Dan Guo Xiaojie Ma Zhiyang Xu Anwer Hayat Songtao Li Tianrui Zhai Large-Area Biocompatible Random Laser for Wearable Applications Nanomaterials random laser biocompatible large-area polymer film wearable |
author_facet |
Kun Ge Dan Guo Xiaojie Ma Zhiyang Xu Anwer Hayat Songtao Li Tianrui Zhai |
author_sort |
Kun Ge |
title |
Large-Area Biocompatible Random Laser for Wearable Applications |
title_short |
Large-Area Biocompatible Random Laser for Wearable Applications |
title_full |
Large-Area Biocompatible Random Laser for Wearable Applications |
title_fullStr |
Large-Area Biocompatible Random Laser for Wearable Applications |
title_full_unstemmed |
Large-Area Biocompatible Random Laser for Wearable Applications |
title_sort |
large-area biocompatible random laser for wearable applications |
publisher |
MDPI AG |
series |
Nanomaterials |
issn |
2079-4991 |
publishDate |
2021-07-01 |
description |
Recently, wearable sensor technology has drawn attention to many health-related appliances due to its varied existing optical, electrical, and mechanical applications. Similarly, we have designed a simple and cheap lift-off fabrication technique for the realization of large-area biocompatible random lasers to customize wearable sensors. A large-area random microcavity comprises a matrix element polymethyl methacrylate (PMMA) in which rhodamine B (RhB, which acts as a gain medium) and gold nanorods (Au NRs, which offer plasmonic feedback) are incorporated via a spin-coating technique. In regards to the respective random lasing device residing on a heterogenous film (area > 100 cm<sup>2</sup>), upon optical excitation, coherent random lasing with a narrow linewidth (~0.4 nm) at a low threshold (~23 μJ/cm<sup>2</sup> per pulse) was successfully attained. Here, we maneuvered the mechanical flexibility of the device to modify the spacing between the feedback agents (Au NRs), which tuned the average wavelength from 612.6 to 624 nm under bending while being a recoverable process. Moreover, the flexible film can potentially be used on human skin such as the finger to serve as a motion and relative-humidity sensor. This work demonstrates a designable and simple method to fabricate a large-area biocompatible random laser for wearable sensing. |
topic |
random laser biocompatible large-area polymer film wearable |
url |
https://www.mdpi.com/2079-4991/11/7/1809 |
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