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暴露于不同气体环境引起的纳米多孔金的硬化

Hardening of Nanoporous Au Induced by Exposure to Different Gaseous Environments.

作者信息

Pia Giorgio, Sogne Elisa, Falqui Andrea, Delogu Francesco

机构信息

Dipartimento di Ingegneria Meccanica, Chimica e dei Materiali, Università Degli Studi di Cagliari, Piazza d'Armi, 09123 Cagliari, Italy.

NABLA Lab, Biological and Environmental Sciences and Engineering (BESE) Division, King Abdullah University of Science and Technology (KAUST), Thuwal 23955-6900, Saudi Arabia.

出版信息

Materials (Basel). 2022 Apr 7;15(8):2718. doi: 10.3390/ma15082718.

Abstract

This work focuses on the mechanical behaviour of nanoporous Au samples alternately exposed to ozone and carbon dioxide. Nanoporous Au was fabricated by freely corroding the AgAu parent alloys prepared by mechanical alloying in the form of powder and subsequently compacted by cold pressing. Dealloying was performed in acidic solution, and conditions were suitably adjusted to obtain fine nanoporous Au structures with ligaments about 15 nm thick. Nanoporous Au samples with increasingly thicker ligaments, up to about 40 nm, were fabricated by annealing the pristine nanoporous Au structure for different time intervals at 473 K. For all of the samples, the cyclic variation of gaseous atmosphere results in a macroscopic strain variation due to the occurrence of surface oxidation and reduction processes. We show that the reiterated cyclic exposure to the different gases also induces the progressive hardening of nanoporous Au, which can be ascribed to irreversible strain contributions. For nanoporous Au samples with ligaments that are 15 nm thick, after 50 exposure cycles, the yield strength increases approximately from 49 MPa to 57 MPa. A systematic investigation on coarser nanoporous Au structures indicates that, with the same exposure cycles, the degree of hardening decreases with the ligament thickness.

摘要

这项工作聚焦于交替暴露于臭氧和二氧化碳环境下的纳米多孔金样品的力学行为。纳米多孔金是通过对机械合金化制备的粉末状AgAu母合金进行自由腐蚀,随后通过冷压压实而制成的。脱合金过程在酸性溶液中进行,并适当调整条件以获得具有约15纳米厚韧带的精细纳米多孔金结构。通过在473K下对原始纳米多孔金结构进行不同时间间隔的退火处理,制备出韧带厚度逐渐增加至约40纳米的纳米多孔金样品。对于所有样品,由于表面氧化和还原过程的发生,气态气氛的循环变化导致宏观应变变化。我们表明,反复循环暴露于不同气体也会引起纳米多孔金的逐渐硬化,这可归因于不可逆应变贡献。对于韧带厚度为15纳米的纳米多孔金样品,经过50次暴露循环后,屈服强度从约49MPa增加到57MPa。对更粗的纳米多孔金结构进行的系统研究表明,在相同的暴露循环次数下,硬化程度随韧带厚度的增加而降低。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/df4e/9029216/74e17bf33768/materials-15-02718-g001.jpg

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