Submitted:
20 September 2025
Posted:
23 September 2025
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Advanced AFM and SKPFM Data Analysis Techniques
2.1. Power Spectral Density Analysis
2.2. Multimodal Gaussian & Histogram Analysis
2.3. Convolution & Deconvolution in AFM/SKPFM
3. Applications of Advanced AFM and SKPFM in Corrosion Science
3.1. Dissimilar Metal Welds and Joints
3.2. Biomedical Alloys and Implants
3.3. Protective Coatings and Superhydrophobic Surfaces
3.4. Atmospheric and Localized Corrosion
3.5. Nanoparticles and Biointerfaces
3.6. Other Material Systems
4. Emerging Techniques and Advantages in Nanoscale Corrosion Analysis Using Advanced AFM
5. Outlook
- Multimodal Integration: Correlative techniques such as Raman-AFM, SECM-AFM, and EIS-AFM will enhance chemical and electrochemical characterization alongside morphological mapping.
- Machine Learning and Automation for data analysis: AI-driven feature recognition, classification, and predictive modeling will streamline large-scale data analysis, enabling faster and more accurate insights.
- High-Speed and In-Situ Techniques: Real-time AFM imaging with high temporal resolution will allow the capture of transient corrosion phenomena, advancing kinetic understanding.
- Standardization of Statistical Protocols: Establishing universal methods for PSD, roughness quantification, and multimodal Gaussian analysis will improve reproducibility and allow cross-laboratory and cross-material comparisons.
- Long-Term and Real-World Relevance: In-situ AFM studies in realistic service environments will bridge the gap between short-term experiments and long-term durability, enhancing industrial applicability.
6. Conclusions
- Comprehensive mapping: Full 2D and 3D evaluation of AFM and SKPFM images provides complete coverage of surface roughness and potential variations that cannot be captured by single line profiles.
- Scale-resolved insights: Spectral analysis enables the separation of fine-scale and coarse-scale corrosion features, offering a clearer understanding of different degradation mechanisms.
- Quantitative statistics: Population-based statistical analysis allows distinct identification and quantification of phases, oxides, and corrosion products within the scanned area.
- Improved accuracy: Deconvolution techniques correct tip-induced artefacts, yielding truer representations of both morphology and local potential distributions.
- Dynamic tracking: Time-lapse AFM and SKPFM imaging captures the evolution of transient corrosion processes, providing kinetic information at the nanoscale.
- Mechanistic depth: Integration with complementary methods links structural, chemical, and electrochemical information, enabling a more comprehensive understanding of corrosion mechanisms.
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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| Alloy/Material System | Techniques Used | Analysis Methods | Main Outcomes | Reference | Year |
| Aluminum Alloys (EN AW-3003, AA5083/AA7023) | AFM, SKPFM, SECM | Line profile, Histogram, PSD, FFT | Corrosion at intermetallic particles; Volta potential mapping | [1-7] | 2005-2011 |
| Duplex Stainless Steel (2205) | SKPFM, EBSD | Line profile, Potential mapping | Strain-induced corrosion; ferrite vs austenite phases | [8, 9] | 2015-2016 |
| Super Duplex Stainless Steel | SKPFM, STEM-EDS, Mott-Schottky | Volta potential mapping, Statistical analysis | Ferrite nobler due to Mo/W/Cr; passive film heterogeneity | [10] | 2019 |
| FSW Al-Cu joints | SEM-EDS, AFM, SKPFM | Histograms, potential mapping | Micro-galvanic corrosion at IMC boundaries | [13] | 2014 |
| Ti-Cu Welded Bimetal | AFM, SKPFM | Histogram, FFT | Volta potential at Ti-Cu IMCs; nobility inversion after immersion | [16, 17] | 2018 |
| Low Alloy Steel A508/309L/308L Weld | AFM, SKPFM, SVET, SEM | PSD, Gaussian distribution, FFT | MnS inclusions as pit initiation; area ratio effects | [18] | 2019 |
| Ti-6Al-4V Alloy (Biomedical) | AFM, SKPFM, Mott-Schottky | Histogram, PSD | Cold work raises passive current; α-phase anodic | [20] | 2015 |
| CoCrMo Implant Alloy | SKPFM, SEM, Mott-Schottky | Histogram, Roughness quantification | Protein adsorption lowers Volta potential; accelerates corrosion | [23] | 2022 |
| WE43 Mg Alloy | AFM, SKPFM, SEM | Statistical roughness analysis | Protein-electrolyte effects on Mg degradation | [24] | 2024 |
| Ni Superhydrophobic Coatings | AFM, SKPFM, SEM-EDS, EIS | PSD, Histogram | Surface roughness enhances hydrophobicity & corrosion resistance | [26] | 2018 |
| Thin Dense Chromium (TDC) Coatings | AFM, SKPFM, XPS | Histogram, PSD | Nodule boundaries active; stable Cr oxide protective | [40] | 2024 |
| Electroless Ni-P Coatings | AFM, SKPFM | PSD, Roughness analysis | High-P amorphous NiP improves resistance; low-P localized corrosion | [42] | 2024 |
| NiAl Bronze | AFM, SKPFM, SEM-EDS | Histogram, Line profile | β-phase anodic, α-phase cathodic; phase-specific initiation | [50] | 2014 |
| Nanoparticles (CFO, BFO shells) | AFM, SKPFM, Electrochemistry | Histogram, Statistical analysis | BFO shell reduces nanoparticle corrosion in protein media | [47] | 2023 |
| NiTi Shape Memory Alloy (Additive Manufacturing) | SKPFM | Histogram, Potential mapping | Martensite anodic; [001]-textured NiTi more resistant | [51] | 2025 |
| Cicada Wings (Biointerfaces) | AFM | PSD, Histogram | Nanopillar geometry controls bactericidal efficiency | [49] | 2021 |
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