AI Article Synopsis

  • Zinc Oxide (ZnO) nanorods are promising for applications like gas sensors and solar cells, and this study compares three eco-friendly methods for their production: hydrothermal, chemical bath deposition (CBD), and electrochemical deposition (ECD).
  • XRD analysis confirmed the hexagonal wurtzite structure of ZnO, with hydrothermal yielding the most uniform and thicker nanorods, while CBD and ECD resulted in less consistent shapes.
  • The hydrothermal method also provided the highest photocurrent values (2.25 µA) and better optical properties, making it the most effective technique for producing high-quality ZnO nanorods.

Article Abstract

Zinc Oxide (ZnO) nanorods have great potential in several applications including gas sensors, light-emitting diodes, and solar cells because of their unique properties. Here, three low cost and ecofriendly techniques were used to produce ZnO nanorods on FTO substrates: hydrothermal, chemical bath deposition (CBD), and electrochemical deposition (ECD). This study explores the impact of such methods on the optical, structural, electrical, morphological, and photoelectrochemical properties of nanorods using various measurements. XRD analysis confirmed the hexagonal wurtzite structure of ZnO nanorods in all three methods, with hydrothermal showing a preferred orientation (002) and CBD and ECD samples showing multiple growth directions, with average particle sizes of 31 nm, 34 nm, and 33 nm, respectively. Raman spectra revealed hexagonal Wurtzite structure of ZnO, with hydrothermal method exhibiting higher E (high) peak at 438 cm than CBD and ECD methods. SEM results revealed hexagonal ZnO nanorods became more regular and thicker for the hydrothermal method, while CBD and ECD led to less uniform with voids. UV-vis spectra showed absorption lines between 390 nm and 360 nm. Optical bandgap energies were calculated as 3.32 eV, 3.22 eV, and 3.23 eV for hydrothermal, CBD, and ECD samples, respectively. PL spectra revealed UV emission band with a small intensity peak around 389 nm and visible emission peaks at 580 nm. Temperature dependent PL measurements for ZnO nanorods indicated that the intensities ratio between bound exciton and free exciton decreases with temperature increases for the three methods. Photocurrent measurements revealed ZnO nanorod films as n-type semiconductors, with photocurrent values of 2.25 µA, 0.28 µA, and 0.3 µA for hydrothermal, CBD, and ECD samples, and photosensitivity values of 8.01, 2.79, and 3.56 respectively. Our results suggest that the hydrothermal method is the most effective approach for fabricating high-quality ZnO nanorods for optoelectronic applications.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC11470147PMC
http://dx.doi.org/10.1038/s41598-024-73352-5DOI Listing

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