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An Ultrasensitive Perovskite Single-Model Plasmonic Strain Sensor Based on Piezoelectric Effect

  • Meili Li
  • , Junfeng Lu
  • , Peng Wan
  • , Mingming Jiang
  • , Yepei Mo
  • , Caofeng Pan*
  • *Corresponding author for this work
  • Chinese Academy of Sciences
  • Nanjing University of Aeronautics and Astronautics

Research output: Contribution to journalArticlepeer-review

Abstract

Interest in flexible photonics has been motivated by the development of artificial smart skins. In particular, coupling of photonics and mechanics can offer opportunities to realize ultrasensitive strain sensor, however, low-cost fabrication of flexible sensing device with desired photonic functionality remains a challenge. Hereby, the study reports an ultrasensitive strain-gauge sensor based on the poly(ethylenenaphthalate (PEN))/monocrystal Au/MgF2/CsPbBr3 nanorod/Al2O3/polyacrylonitrile (in short P/mAu/M/CPB@Al2O3@PAN), which are sensitive to nanoscale structure alterations of PEN substrate via the stress response of the single-mode laser based on the piezoelectric-effect. Wherein a low-threshold single-mode lasing (Pth ≈ 170 nJ cm−2) is achieved through coating Al2O3 on the CsPbBr3 nanorod, producing the higher quality factor (Q ≈ 1637) to guarantee a much higher sensitivity in sensing application. Reversible spectral regulating of ≈3 nm in single-mode-lasing wavelength, with a subnanometre scale resolution <0.4 nm and the wavelength sensitivity (Sλ) as high as 160 nm RIU−1, is validated in response to applied strain ranging from −1.31% to 1.31%. This work not only represents essential progress in construction of ultrasensitive and cost-effective flexible photonic sensor, but also lays the foundation for the potential application in smart photonic skins.

Original languageEnglish
Article number2403840
JournalAdvanced Functional Materials
Volume34
Issue number41
DOIs
StatePublished - 8 Oct 2024

Keywords

  • CsPbBr nanorods
  • piezoelectric effect
  • single-mode lasing
  • strain-gauge sensor
  • ultrasensitive

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