4.6 Article

Influence of ions on two-dimensional and three-dimensional atomic force microscopy at fluorite-water interfaces

期刊

NANOTECHNOLOGY
卷 28, 期 24, 页码 -

出版社

IOP PUBLISHING LTD
DOI: 10.1088/1361-6528/aa7188

关键词

frequency modulation atomic force microscopy; fluorite-water interface; atomic-resolution imaging; three-dimensional scanning force microscopy; hydration structures; molecular dynamics simulation; solvent tip approximation model

资金

  1. ACT-C, Japan Science and Technology Agency
  2. JSPS KAKENHI [JP16H02111]
  3. CHOZEN Project, Kanazawa University
  4. Leverhulme trust [F/07 134/CK]
  5. EPSRC [EP/L000202]
  6. EPSRC [EP/L000202/1] Funding Source: UKRI
  7. Grants-in-Aid for Scientific Research [16H02111, 16J01938] Funding Source: KAKEN

向作者/读者索取更多资源

Recent advancement in liquid-environment atomic force microscopy (AFM) has enabled us to visualize three-dimensional (3D) hydration structures as well as two-dimensional (2D) surface structures with subnanometer-scale resolution at solid-water interfaces. However, the influence of ions present in solution on the 2D-and 3D-AFM measurements has not been well understood. In this study, we perform atomic-scale 2D-and 3D-AFM measurements at fluorite-water interfaces in pure water and a supersaturated solution of fluorite. The images obtained in these two environments are compared to understand the influence of the ions in solution on these measurements. In the 2D images, we found clear difference in the nanoscale structures but no significant difference in the atomic-scale contrasts. However, the 3D force images show clear difference in the subnanometer-scale contrasts. The force contrasts measured in pure water largely agree with those expected from the molecular dynamics simulation and the solvent tip approximation model. In the supersaturated solution, an additional force peak is observed over the negatively charged fluorine ion site. This location suggests that the observed force peak may originate from cations adsorbed on the fluorite surface. These results demonstrate that the ions can significantly alter the subnanometer-scale force contrasts in the 3D-AFM images.

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