Highly efficient sequestration of aqueous lead on nanostructured calcite substrates

Nanotechnology. 2023 Jun 23;34(36). doi: 10.1088/1361-6528/acdbd4.

Abstract

Following defocused ion beam sputtering, large area highly corrugated and faceted nanoripples are formed on calcite (10.4) faces in a self-organized fashion. High resolution atomic force microscopy (AFM) imaging reveals that calcite ripples are defined by facets with highly kinked (11.0) and (21¯.12) terminations.In situAFM imaging during the exposure of such modified calcite surfaces to PbCl2aqueous solution reveals that the nanostructured calcite surface promotes the uptake of Pb. In addition, we observed the progressive smoothing of the highly reactive calcite facet terminations and the formation of Pb-bearing precipitates elongated in registry with the underlying nanopattern. By SEM-EDS analysis we quantified a remarkable 500% increase of the Pb uptake rate, up to 0.5 atomic weight % per hour, on the nanorippled calcite in comparison to its freshly cleaved (10.4) surfaces. These results suggest that nanostructurated calcite surfaces can be used for developing future systems for lead sequestration from polluted waters.

Keywords: atomic force microscopy; ion beam sputtering; ion bombardment; metal sorption; nanopatterning; water purification.

MeSH terms

  • Calcium Carbonate*
  • Lead
  • Microscopy, Atomic Force / methods
  • Nanostructures*
  • Water

Substances

  • Calcium Carbonate
  • Lead
  • Water