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Correction

Correction: Glawe, C.; Raupach, M. Quantitative Analysis of the Alkali Transport During Chemical Re-Alkalization Using Laser-Induced-Breakdown Spectroscopy. Corros. Mater. Degrad. 2025, 6, 43

Institute of Building Materials Research, RWTH Aachen University, 52062 Aachen, Germany
*
Author to whom correspondence should be addressed.
Corros. Mater. Degrad. 2026, 7(1), 17; https://doi.org/10.3390/cmd7010017
Submission received: 2 March 2026 / Accepted: 4 March 2026 / Published: 6 March 2026
In the original publication [1], there was a mistake in Table 8 as published. When validating the values listed in Table 8 against the time–re-alkalization curves shown in the manuscript, it became clear that the a and b parameters in the table do not reproduce the modelled curves presented in the figures and discussed in the text.
Specifically,
1. The a and b values currently listed in Table 8 do not correspond to the parameter set used to generate the plotted re-alkalization depth predictions.
2. Back-calculation of the modelled curves shows that a different parameter set was used during analysis than the one reported in the table.
3. The discrepancy appears to be the result of an intermediate version of the parameter evaluation being unintentionally transferred into the final table.
To ensure transparency, reproducibility, and correctness of the manuscript, the values in Table 8 should therefore be replaced with the recalculated and internally consistent values. The corrected Table 8 appears below. The authors state that the scientific conclusions are unaffected. This correction was approved by the Academic Editor. The original publication has also been updated.

Reference

  1. Glawe, C.; Raupach, M. Quantitative Analysis of the Alkali Transport During Chemical Re-Alkalization Using Laser-Induced-Breakdown Spectroscopy. Corros. Mater. Degrad. 2025, 6, 43. [Google Scholar] [CrossRef]
Table 8. Results of fitting the power equation (Equation (5)) to the attenuation factors of the different materials.
Table 8. Results of fitting the power equation (Equation (5)) to the attenuation factors of the different materials.
OPC50C50C 0.5
KOH
50C 0.5
KOH KWG
50C 0.5 KWG50C 2.3 KOH50C 2.3 KOH KWG
a0.3920.5070.7810.7730.3981.0781.165
b−0.202−0.435−0.445−0.462−0.261−0.361−0.308
R20.990.980.980.990.930.990.99
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MDPI and ACS Style

Glawe, C.; Raupach, M. Correction: Glawe, C.; Raupach, M. Quantitative Analysis of the Alkali Transport During Chemical Re-Alkalization Using Laser-Induced-Breakdown Spectroscopy. Corros. Mater. Degrad. 2025, 6, 43. Corros. Mater. Degrad. 2026, 7, 17. https://doi.org/10.3390/cmd7010017

AMA Style

Glawe C, Raupach M. Correction: Glawe, C.; Raupach, M. Quantitative Analysis of the Alkali Transport During Chemical Re-Alkalization Using Laser-Induced-Breakdown Spectroscopy. Corros. Mater. Degrad. 2025, 6, 43. Corrosion and Materials Degradation. 2026; 7(1):17. https://doi.org/10.3390/cmd7010017

Chicago/Turabian Style

Glawe, Clarissa, and Michael Raupach. 2026. "Correction: Glawe, C.; Raupach, M. Quantitative Analysis of the Alkali Transport During Chemical Re-Alkalization Using Laser-Induced-Breakdown Spectroscopy. Corros. Mater. Degrad. 2025, 6, 43" Corrosion and Materials Degradation 7, no. 1: 17. https://doi.org/10.3390/cmd7010017

APA Style

Glawe, C., & Raupach, M. (2026). Correction: Glawe, C.; Raupach, M. Quantitative Analysis of the Alkali Transport During Chemical Re-Alkalization Using Laser-Induced-Breakdown Spectroscopy. Corros. Mater. Degrad. 2025, 6, 43. Corrosion and Materials Degradation, 7(1), 17. https://doi.org/10.3390/cmd7010017

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