@article{7297504c074b4f16b43d52b433580733,
title = "Vapor phase dealloying kinetics of MnZn alloys",
abstract = "Vapor phase dealloying (VPD) is an environmentally-friendly method for fabricating nanoporous materials by utilizing the saturated vapor pressure difference of elements to selectively drive sublimation of one or more components from an alloy. VPD kinetics has not been explored and rate-controlling factors of the solid-gas transformation within complex nanostructure remain unknown. Using manganese-zinc alloys as a prototype system, we systematically investigated the dependence of dealloying velocity on temperature and pressure and presented a model to quantitatively describe the dealloying kinetics. We found that the dealloying velocity exhibits a linear to power law transition at a critical dealloying depth, resulting from the interplay between the kinetic process of dealloying and dealloyed microstructure. This transition bridges ballistic evaporation at early time to Knudsen diffusion of Zn vapor in developed pore channels where the Zn partial pressure at the dealloying front reaches the local equilibrium between the solid and vapor phases. By comparing activation energies for VPD and bulk zinc sublimation, the entire energy landscape of VPD is measured. The fundamental understanding of VPD kinetics paves an effective way to design dealloyable precursor alloys and to optimize dealloyed microstructure of VPD materials for a wide range of applications.",
keywords = "Activation energy, Ballistic evaporation, Dealloying kinetics, Knudsen diffusion, Vapor phase dealloying",
author = "Zhen Lu and Fan Zhang and Daixiu Wei and Jiuhui Han and Yanjie Xia and Jing Jiang and Mingwang Zhong and Akihiko Hirata and Kentaro Watanabe and Alain Karma and Jonah Erlebacher and Mingwei Chen",
note = "Funding Information: We thank Karl Sieradzki and Juergen Biener for inspiring discussion. This work was sponsored by JST- CREST {"}Phase Interface Science for Highly Efficient Energy Utilization{"}, JST (Japan); and the Fusion Research Funds from WPI-AIMR, Tohoku University . M.C. acknowledges the support of U.S. National Science Foundation under grant DMR-1804320 . J.E. thanks the U.S. National Science Foundation under grant DMR-1806142 . A.K. acknowledges the support of Grant No. DE-FG02-07ER46400 from the U.S. Department of Energy, Office of Basic Energy Sciences . Funding Information: We thank Karl Sieradzki and Juergen Biener for inspiring discussion. This work was sponsored by JST-CREST {"}Phase Interface Science for Highly Efficient Energy Utilization{"}, JST (Japan); and the Fusion Research Funds from WPI-AIMR, Tohoku University. M.C. acknowledges the support of U.S. National Science Foundation under grant DMR-1804320. J.E. thanks the U.S. National Science Foundation under grant DMR-1806142. A.K. acknowledges the support of Grant No. DE-FG02-07ER46400 from the U.S. Department of Energy, Office of Basic Energy Sciences. Publisher Copyright: {\textcopyright} 2021 Acta Materialia Inc.",
year = "2021",
month = jun,
day = "15",
doi = "10.1016/j.actamat.2021.116916",
language = "English",
volume = "212",
journal = "Acta Materialia",
issn = "1359-6454",
publisher = "Elsevier Limited",
}