AI Article Synopsis

  • Researchers developed room-temperature sensors using silicon nanowires (NWs) made from p-Si wafers through a cost-effective metal-assisted chemical etching method.
  • X-ray diffraction, scanning electron microscopy (SEM), and transmission electron microscopy (TEM) were utilized to confirm the crystallinity and morphology of the Si NWs before conducting sensing tests.
  • The sensors showed a high response (1.86 at 50 ppm NO) and fast response/recovery times when detecting NO gas, while displaying minimal sensitivity to other gases, indicating strong selectivity and potential for integration in silicon-based electronic devices.

Article Abstract

We report the room-temperature sensing characteristics of Si nanowires (NWs) fabricated from p-Si wafers by a metal-assisted chemical etching method, which is a facile and low-cost method. X-ray diffraction was used to the the study crystallinity and phase formation of Si NWs, and product morphology was examined using scanning electron microscopy (SEM) and transmission electron microscopy (TEM). After confirmation of Si NW formation via the SEM and TEM micrographs, sensing tests were carried out at room temperature, and it was found that the Si NW sensor prepared from Si wafers with a resistivity of 0.001-0.003 Ω.cm had the highest response to NO gas (R/R = 1.86 for 50 ppm NO), with a fast response (15 s) and recovery (30 s) time. Furthermore, the sensor responses to SO, toluene, benzene, H, and ethanol were nearly negligible, demonstrating the excellent selectivity to NO gas. The gas-sensing mechanism is discussed in detail. The present sensor can operate at room temperature, and is compatible with the microelectronic fabrication process, demonstrating its promise for next-generation Si-based electronics fused with functional chemical sensors.

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Source
http://dx.doi.org/10.1088/1361-6528/aac17bDOI Listing

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