4.5 Article

Mechanically induced strong red emission in samarium ions doped piezoelectric semiconductor CaZnOS for dynamic pressure sensing and imaging

期刊

OPTICS COMMUNICATIONS
卷 395, 期 -, 页码 24-28

出版社

ELSEVIER
DOI: 10.1016/j.optcom.2016.03.046

关键词

Mechanoluminesense; Piezo-photonics; Dynamic pressure sensingand imaging

类别

资金

  1. Doctoral Foundation of Chongqing Normal University, China [10XLB001]
  2. thousand talents program for the pioneer researcher and the innovation team in China
  3. Presidential Funding of the Chinese Academy of Sciences
  4. National Natural Science Foundation of China [51272238, 21321062, 51432005, 51502018, 61405040]
  5. Beijing City Committee of Science and Technology [Z151100003315010]

向作者/读者索取更多资源

Piezoelectric semiconductor with optical, electrical and mechanical multifunctions has great potential applications in future optoelectronic devices. The rich properties and applications mainly encompass the intrinsic structures and their coupling effects. Here, we report that lanthanide ions doped piezoelectric semiconductor CaZnOS:Sm3+ showing strong red emission induced by dynamic mechanical stress. Under moderate mechanical load, the doped piezoelectric semiconductor exhibits strong visible red emission to the naked eyes even under the day light. A flexible dynamic pressure sensor device is fabricated based on the prepared CaZnOS:Sm3+ powders. The mechanical-induced emission properties of the device are investigated by the optical fiber spectrometer. The linear characteristic emissions are attributed to the (4)G(5/2)-> H-6(5/2) (566 nm), (4)G(5/2)-> H-6(7/2) (580-632 nm), (4)G(5/2)-> H-6(9/2) (653-673 nm) and (4)G(5/2)-> H-6(11/2) (712-735 nm) f-f transitions of Sm3+ ions. The integral emission intensity is proportional to the value of applied pressure. By using the linear relationship between integrated emission intensity and the dynamic pressure, the real-time pressure distribution is visualized and recorded. Our results highlight that the incorporation of lanthanide luminescent ions into piezoelectric semiconductors as smart materials could be applied into the flexible mechanical-optical sensor device without additional auxiliary power, which has great potential for promising applications such as mapping of personalized handwriting, smart display, and human machine interface. (C) 2016 Elsevier B.V. All rights reserved.

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