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Precise design of chiral-polar hybrid perovskites toward efficient self-powered full-stokes photodetection

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  • Corresponding authors: lilina@fjirsm.ac.cn (L. L.)
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    1. Two novel chiral-polar hybrid perovskites were successfully synthesized.

      A self-powered full-Stokes photodetection with the Stokes parameter averaging error of less than 0.08 was acquired.

      Provides new insights into the design of materials for high-performance multipolarization state photodetection.

  • Full-Stokes polarimeters can efficiently discriminate the multipolarization of lights, showing great potential in fields of medical science, military and optoelectronics. However, most of the current full-Stokes polarimeters are limited by complex optical devices and low detection accuracy of Stokes vectors, which impeded their practical optoelectronic application. In this work, we successfully designed two novel chiral-polar hybrid perovskites, ((R)-β-MPA)PAPbI4 and ((S)-β-MPA)PAPbI4 (R-1 and S-1, MPA = methylphenethylamine and PA = propylamine), which show distinctive bulk photovoltaic effect (BPVE). The BPVE enables efficient self-driven detection of linearly and circularly polarized light (LPL and CPL, respectively) in a single-crystal device of R-1. Such detection possesses high LPL sensitivity with a polarization ratio reaching 1.52 and CPL distinguishability reaching 0.4, achieving highly accurate full-Stokes polarization detection with the Stokes parameter averaging error of less than 0.08. To the best of our knowledge, this is the first report on chiral hybrid perovskite realizing self-powered full-Stokes photodetection based on BPVE. These results provide new insights into the design of chiral materials for high-performance multipolarization photodetection.
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  • Cite this article:

    Wu H., Xu Z., Dong X., et al., (2024). Precise design of chiral-polar hybrid perovskites toward efficient self-powered full-stokes photodetection. The Innovation Materials 2(3): 100084. https://doi.org/10.59717/j.xinn-mater.2024.100084
    Wu H., Xu Z., Dong X., et al., (2024). Precise design of chiral-polar hybrid perovskites toward efficient self-powered full-stokes photodetection. The Innovation Materials 2(3): 100084. https://doi.org/10.59717/j.xinn-mater.2024.100084

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