AI Article Synopsis

  • - Innovative ion exchange membranes, such as ASE, CJMA-3, and CJMA-6, have been analyzed for their structural and transport properties in various phosphate and salt solutions, revealing significant differences in their conductivity and ion-exchange capacities.
  • - ASE features a highly cross-linked aromatic structure with quaternary ammonium groups leading to superior conductivity, whereas CJMA-3 and CJMA-6 have more flexible matrices made from polyvinylidene fluoride and polyolefin, respectively, which contain different types of amines.
  • - The presence of weakly basic amines in CJMA-6 leads to reduced conductivity in phosphate solutions due to the formation of bound species with phosphoric acid, and under certain conditions

Article Abstract

Innovative ion exchange membranes have become commercially available in recent years. However, information about their structural and transport characteristics is often extremely insufficient. To address this issue, homogeneous anion exchange membranes with the trade names ASE, CJMA-3 and CJMA-6 have been investigated in NaHPO solutions with pH 4.4 ± 0.1, 6.6 and 10.0 ± 0.2, as well as NaCl solutions with pH 5.5 ± 0.1. Using IR spectroscopy and processing the concentration dependences of the electrical conductivity of these membranes in NaCl solutions, it was shown that ASE has a highly cross-linked aromatic matrix and mainly contains quaternary ammonium groups. Other membranes have a less cross-linked aliphatic matrix based on polyvinylidene fluoride (CJMA-3) or polyolefin (CJMA-6) and contain quaternary amines (CJMA-3) or a mixture of strongly basic (quaternary) and weakly basic (secondary) amines (CJMA-6). As expected, in dilute solutions of NaCl, the conductivity of membranes increases with an increase in their ion-exchange capacity: CJMA-6 < CJMA-3 << ASE. Weakly basic amines appear to form bound species with proton-containing phosphoric acid anions. This phenomenon causes a decrease in the electrical conductivity of CJMA-6 membranes compared to other studied membranes in phosphate-containing solutions. In addition, the formation of the neutral and negatively charged bound species suppresses the generation of protons by the "acid dissociation" mechanism. Moreover, when the membrane is operated in overlimiting current modes and/or in alkaline solutions, a bipolar junction is formed at the CJMA- 6/depleted solution interface. The CJMA-6 current-voltage curve becomes similar to the well-known curves for bipolar membranes, and water splitting intensifies in underlimiting and overlimiting modes. As a result, energy consumption for electrodialysis recovery of phosphates from aqueous solutions almost doubles when using the CJMA-6 membrane compared to the CJMA-3 membrane.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10221651PMC
http://dx.doi.org/10.3390/polym15102288DOI Listing

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