4.8 Article

Patterned 2D Ferroelectric Perovskite Single-Crystal Arrays for Self- Powered UV Photodetector Boosted by Combining Ferro-Pyro- Phototronic and Piezo-Phototronic Effects

Journal

NANO LETTERS
Volume 22, Issue 20, Pages 8241-8249

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acs.nanolett.2c02978

Keywords

self-powered UV photodetector; 2D perovskite single-crystal arrays; ferro-pyro-phototronic effect; piezo-phototronic effect

Funding

  1. National Natural Science Foundation of China
  2. Natural Science Foundation of Hebei Province
  3. Hebei Education Department
  4. Advanced Talents Incubation Program of the Hebei University
  5. Science and Technology Plan Project of Hebei Province
  6. [62005072]
  7. [62104057]
  8. [51972094]
  9. [52125205]
  10. [U20A20166]
  11. [61805015]
  12. [61804011]
  13. [E2020201025]
  14. [E2021201016]
  15. [B2021201034]
  16. [BJK2022050]
  17. [521000981287]
  18. [521000981351]
  19. [521000981248]
  20. [226Z1002G]

Ask authors/readers for more resources

In this study, patterned 2D ferroelectric perovskite microbelt arrays were fabricated, leading to optimized performance of flexible photodetectors. These perovskite arrays exhibited excellent self-powered photodetection performance under 320 nm illumination, and the introduction of piezo-phototronic effect greatly enhanced their performance.
Metal halide perovskite ferroelectrics possess various physical characteristics such as piezoelectric and pyro-electric effects, which could broaden the application of perovskite ferroelectrics and enhance the optoelectronic performance. There-fore, it is promising to combine multiple effects to optimize the performance of the self-powered PDs. Herein, patterned 2D ferroelectric perovskite (PMA)2PbCl4 microbelt arrays were demonstrated through a PDMS template-assisted antisolvent crystallization method. The perovskite arrays based flexible photodetectors exhibited fine self-powered photodetection per-formance under 320 nm illumination and much enhanced reproducibility compared with the randomly distributed single-crystal microbelts-based PDs. Furthermore, by introducing the piezo-phototronic effect, the performance of the flexible PD was greatly enhanced. Under an external tensile strain of 0.71%, the responsivity was enhanced by 185% from 84 to 155.5 mA/W. Our findings offer the advancement of comprehensively utilizing various physical characteristics of the ferroelectrics for novel ferroelectric optoelectronics.

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