Nanoscale Mechanisms of Corrosion Threshold: Effects of Passivation Film Crystal Structures

Abstract The corrosion resistance of passive films on reinforcing steel is fundamentally governed by the depassivation stability of iron oxide polymorphs under chloride-containing environments. In this study, the electrochemical behavior and atomistic depassivation mechanisms of γ-, β-, and α-Fe2O3 passive films were systematically investigated through combined electrochemical measurements, structural characterization, metadyn2amics, and reactive force field (ReaxFF) molecular dynamics simulations. Electrochemical results demonstrate that β-Fe2O3 exhibits the lowest corrosion current density, the highest impedance stability, and the strongest resistance against chloride-induced depassivation. Across 0–5 wt % NaCl, the β-Fe2O3-dominant coating exhibited the lowest mean corrosion-current response and a comparatively persistent impedance response. At 5 wt % NaCl, the corrosion current density was (5.46 ± 0.65) × 10–5 A for the β-dominant coating, compared with (7.11 ± 0.19) × 10–5 A for the γ-dominant in situ film and (3.45 ± 1.24) × 10–4 A for the α coating (mean ± SD, n = 3). Metadynamics simulations reveal that β-Fe2O3 maintains the highest free-energy barrier for Fe atom exfoliation even at elevated NaCl concentrations, indicating intrinsically superior thermodynamic stability. At 5 wt % NaCl, the calculated Fe-exfoliation barriers were approximately 55, 21, and 10 kJ mol–1 for the β-, γ-, and α-Fe2O3 models, respectively. Atomic-scale analyses further show that the β-phase suppresses chloride penetration, limits interfacial hydration accessibility, and preserves stable Fe–Os coordination networks. In contrast, γ- and α-Fe2O3 undergo significant hydration-assisted coordination exchange and lattice destabilization under chloride exposure. The results establish that the macroscopic corrosion threshold is partly associated with polymorph-dependent coordination stability and interfacial depassivation energetics. The results indicate that polymorph-dependent coordination stability and interfacial depassivation energetics contribute to the macroscopic corrosion threshold, although they do not fully account for the complexity of corrosion initiation in real systems.

Authors

Institutions

Publication Details

Journal
ACS Applied Materials & Interfaces
Published
2026-09-30
DOI
https://doi.org/10.1021/acsami.6c11665
Primary Topic
Corrosion Behavior and Inhibition
Type
article
Field-Weighted Citation Impact
0.00
Controls
|||
ALL TIME
JAN
FEB
MAR
APR
MAY
JUN
JUL
AUG
SEP
article

Nanoscale Mechanisms of Corrosion Threshold: Effects of Passivation Film Crystal Structures

Jinrui Zhang, Muhan Wang, Dongshuai Hou, Shuxian Hong et al.
ACS Applied Materials & Interfaces
Corrosion Behavior and Inhibition
article

Nanoscale Mechanisms of Corrosion Threshold: Effects of Passivation Film Crystal Structures

Jinrui Zhang, Muhan Wang, Dongshuai Hou, Shuxian Hong, Ziye Li, Yihan Wang, Xiangming Zhou, Pan Wang
article en

Abstract

Abstract The corrosion resistance of passive films on reinforcing steel is fundamentally governed by the depassivation stability of iron oxide polymorphs under chloride-containing environments. In this study, the electrochemical behavior and atomistic depassivation mechanisms of γ-, β-, and α-Fe2O3 passive films were systematically investigated through combined electrochemical measurements, structural characterization, metadyn2amics, and reactive force field (ReaxFF) molecular dynamics simulations. Electrochemical results demonstrate that β-Fe2O3 exhibits the lowest corrosion current density, the highest impedance stability, and the strongest resistance against chloride-induced depassivation. Across 0–5 wt % NaCl, the β-Fe2O3-dominant coating exhibited the lowest mean corrosion-current response and a comparatively persistent impedance response. At 5 wt % NaCl, the corrosion current density was (5.46 ± 0.65) × 10–5 A for the β-dominant coating, compared with (7.11 ± 0.19) × 10–5 A for the γ-dominant in situ film and (3.45 ± 1.24) × 10–4 A for the α coating (mean ± SD, n = 3). Metadynamics simulations reveal that β-Fe2O3 maintains the highest free-energy barrier for Fe atom exfoliation even at elevated NaCl concentrations, indicating intrinsically superior thermodynamic stability. At 5 wt % NaCl, the calculated Fe-exfoliation barriers were approximately 55, 21, and 10 kJ mol–1 for the β-, γ-, and α-Fe2O3 models, respectively. Atomic-scale analyses further show that the β-phase suppresses chloride penetration, limits interfacial hydration accessibility, and preserves stable Fe–Os coordination networks. In contrast, γ- and α-Fe2O3 undergo significant hydration-assisted coordination exchange and lattice destabilization under chloride exposure. The results establish that the macroscopic corrosion threshold is partly associated with polymorph-dependent coordination stability and interfacial depassivation energetics. The results indicate that polymorph-dependent coordination stability and interfacial depassivation energetics contribute to the macroscopic corrosion threshold, although they do not fully account for the complexity of corrosion initiation in real systems.

ACS Applied Materials & Interfaces
Tianjin University (CN), Shenzhen University (CN), University Transportation Research Center (US), Qingdao University of Technology (CN), Brunel University of London (GB)
Openalex Percentile: Top 26%
Corrosion Behavior and Inhibition
AI Navigator

Ask Laika to Summarize, Analyze, and Connect papers live on the map.

Summarize Papers & Methodologies

Extract key findings, datasets, and comparative methods across publications.

Benchmark Rankings & Visual Analytics

Rank top research institutions, authors, funders, topics, and journals by Field-Weighted Citation Impact (FWCI) and paper volume with instant charts.

Connect Distant Disciplines

Bridge topological clusters on the map to find hidden collaborative intersections.