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Dipole Field-Driven Organic-Inorganic Heterojunction for Highly Sensitive Ultraviolet Photodetector. | LitMetric

AI Article Synopsis

  • Researchers have developed high-performance organic-inorganic ultraviolet (UV) photodetectors, overcoming challenges like poor charge-transfer ratios and high costs by using Mg-doped ZnO nanorods and PEDOT:PSS.
  • This new heterojunction structure enhances photogenerated charge kinetics through dipole field-driven spontaneous polarization, achieving impressive metrics including a noise equivalent power of 3.16 × 10 W Hz and a high detection rate.
  • The integration of Mg into ZnO improves performance by creating a dipole field that accelerates electron transfer, positioning this method as a promising strategy for advancing UV photodetector technology.

Article Abstract

Developing high-performance organic-inorganic ultraviolet (UV) photodetectors (PDs) has attracted considerable attention. However, this development has been hindered due to poor directional charge-transfer ratios in transport layers, excessive costs, and an ambiguous underlying mechanism. To tackle these challenges, we constructed a heterojunction of economic Mg-doped ZnO (MgZnO) nanorods and poly(3,4-ethylenedioxythiophene)-poly(styrenesulfonate) [PEDOT:PSS (P:P)] that utilizes dipole field-driven spontaneous polarization to enhance photogenerated charge kinetics. As a result, the proposed heterojunction has an improved noise equivalent power of 3.16 × 10 W Hz), a normalized detection rate (*) of 8.96 × 10 jones, and external quantum efficiency comparable to other ZnO-based devices. Notably, the prepared PDs showed a photocurrent of 4.8 × 10 μA under a faint UV light having an intensity of 1 × 10 W cm, exceeding the performance of the most state-of-the-art ZnO-based UV sensors. The introduction of Mg into ZnO is responsible for the high performance, as it causes a lattice mismatch and distortion of the Mg-doped ZnO unit cell. It results in improved dipole movement and the creation of a dipole field, accelerating the directional electron-transfer process. Using a dipole field to manipulate the migration and transport of photogenerated carriers represents a promising approach for achieving outstanding performance in UV PDs.

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Source
http://dx.doi.org/10.1021/acsami.3c16985DOI Listing

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