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Effect of sandblasting and acid surface pretreatment on the specific capacitance of CuO nanostructures grown by hot water treatment for supercapacitor electrode applications. | LitMetric

AI Article Synopsis

  • Researchers developed crystalline copper oxide (CuO) nanostructures with varying surface roughness using a simple and cost-effective hot water treatment method, involving immersion in deionized water at 75 °C for 24 hours without additives.
  • Different surface pretreatment techniques, like acid treatment and sandblasting, were utilized to adjust the morphology and size of the CuO nanostructures, which were then analyzed using scanning electron microscopy, X-ray diffraction, and Raman spectroscopy.
  • The CuO/Cu samples, particularly those treated with sandblasting and acid, demonstrated the best supercapacitor performance, achieving a specific capacitance of about 104 F/g and maintaining 69% capacitive retention after 2000 cycles, indicating

Article Abstract

Crystalline copper oxide (CuO) nanostructures with micro, nano, and micro-nano surface roughness were grown on Cu sheet substrates by a facile, scalable, low-cost, and low-temperature hot water treatment (HWT) method that simply involved immersing Cu sheet in DI water at 75 °C for 24 h without any chemical additives. Various morphological features and sizes of CuO nanostructures were tuned by using different surface pretreatment techniques including acid treatment, sandblasting, or a combination of those two. The surface morphology of the prepared samples was analyzed by scanning electron microscopy. The crystal structure of the CuO nanostructures was investigated by x-ray diffraction XRD and Raman spectroscopy. To study the pseudocapacitive behavior, their potential supercapacitor performance, and equivalent series resistance, electrochemical analysis was done by cyclic voltammetry and electrochemical impedance spectroscopy for all the CuO/Cu samples in 1 M of NaSOelectrolyte. Among all, the best supercapacitive performance was achieved for CuO/Cu samples pretreated with Sandblasting followed by Acid treatment resulting in a specific capacitance of about 104 F g. The electrode with the sandblasted + acid pretreated sample showed a maximum of ∼69% capacitive retention after 2000 consecutive cycles. Our results indicate that CuO nanostructures on Cu substrates prepared with different surface pretreatment conditions and grown by HWT can be promising electrodes for supercapacitor device applications.

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Source
http://dx.doi.org/10.1088/1361-6528/ad4cf7DOI Listing

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