4.6 Article

Synthesis and Characterization of Activated Carbon Co-Mixed Electrospun Titanium Oxide Nanofibers as Flow Electrode in Capacitive Deionization

期刊

MATERIALS
卷 14, 期 22, 页码 -

出版社

MDPI
DOI: 10.3390/ma14226891

关键词

flow electrode capacitive deionization; electrospinning; activated carbon; desalination

资金

  1. Axe H2O in European Institute of Membranes (IEM)
  2. Federal Government of Nigeria through Tertiary Education Trust fund (TETFUND) [CAMPUS FRANCE 914886H]
  3. Campus France (CF) [CAMPUS FRANCE 914886H]
  4. Axe Energie in European Institute of Membranes (IEM)

向作者/读者索取更多资源

The study prepared a flow electrode containing titanium oxide nanofibers, which exhibited high capacitance and salt removal rate. The uniform distribution of nanofibers on the electrode surface prevented electrode passivation and nanofiber agglomeration, leading to improved cell performance.
Flow capacitive deionization is a water desalination technique that uses liquid carbon-based electrodes to recover fresh water from brackish or seawater. This is a potential second-generation water desalination process, however it is limited by parameters such as feed electrode conductivity, interfacial resistance, viscosity, and so on. In this study, titanium oxide nanofibers (TiO2NF) were manufactured using an electrospinning process and then blended with commercial activated carbon (AC) to create a well distributed flow electrode in this study. Field emission scanning electron microscope (FESEM), X-ray diffraction (XRD), Raman spectroscopy, X-ray photoelectron spectroscopy (XPS), and energy dispersive X-ray (EDX) were used to characterize the morphology, crystal structure, and chemical moieties of the as-synthesized composites. Notably, the flow electrode containing 1 wt.% TiO2NF (ACTiO(2)NF 1 wt.%) had the highest capacitance and the best salt removal rate (0.033 mg/min & BULL;cm(2)) of all the composites. The improvement in cell performance at this ratio indicates that the nanofibers are uniformly distributed over the electrode's surface, preventing electrode passivation, and nanofiber agglomeration, which could impede ion flow to the electrode's pores. This research suggests that the physical mixture could be used as a flow electrode in capacitive deionization.

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