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  4. Wrinkled 2D Materials: A Versatile Platform for Low-Threshold Stretchable Random Lasers
 
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Wrinkled 2D Materials: A Versatile Platform for Low-Threshold Stretchable Random Lasers

Journal
Advanced Materials
Date Issued
2017
Author(s)
YANG-FANG CHEN et al.  
HUAN-TSUNG CHANG et al.  
DOI
10.1002/adma.201703549
URI
https://scholars.lib.ntu.edu.tw/handle/123456789/442996
URL
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85030637949&doi=10.1002%2fadma.201703549&partnerID=40&md5=f3f9226f9b9e604330fc3c9ba027119c
Abstract
AbstractA stretchable, flexible, and bendable random laser system capable of lasing in a wide range of spectrum will have many potential applications in next‐ generation technologies, such as visible‐spectrum communication, superbright solid‐state lighting, biomedical studies, fluorescence, etc. However, producing an appropriate cavity for such a wide spectral range remains a challenge owing to the rigidity of the resonator for the generation of coherent loops. 2D materials with wrinkled structures exhibit superior advantages of high stretchability and a suitable matrix for photon trapping in between the hill and valley geometries compared to their flat counterparts. Here, the intriguing functionalities of wrinkled reduced graphene oxide, single‐layer graphene, and few‐layer hexagonal boron nitride, respectively, are utilized to design highly stretchable and wearable random laser devices with ultralow threshold. Using methyl‐ammonium lead bromide perovskite nanocrystals (PNC) to illustrate the working principle, the lasing threshold is found to be ≈10 µJ cm−2, about two times less than the lowest value ever reported. In addition to PNC, it is demonstrated that the output lasing wavelength can be tuned using different active materials such as semiconductor quantum dots. Thus, this study is very useful for the future development of high‐performance wearable optoelectronic devices.
Type
journal article

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