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通过FeAl金属间化合物合金的自组织阳极氧化制备纳米多孔混合铝铁氧化物

Formation of Nanoporous Mixed Aluminum-Iron Oxides by Self-Organized Anodizing of FeAl Intermetallic Alloy.

作者信息

Chilimoniuk Paulina, Michalska-Domańska Marta, Czujko Tomasz

机构信息

Departmentof Advanced Materials and Technologies, Faculty of Advanced Technology and Chemistry, Military University of Technology, Kaliskiego 2 Street, 00-908 Warszawa, Poland.

Institute of Optoelectronics, Military University of Technology, Kaliskiego 2 Street, 00-908 Warszawa, Poland.

出版信息

Materials (Basel). 2019 Jul 18;12(14):2299. doi: 10.3390/ma12142299.

Abstract

Nanostructured anodic oxide layers on an FeAl intermetallic alloy were prepared by two-step anodization in 20 wt% HSO at 0 °C. The voltage range was 10.0-22.5 V with a step of 2.5 V. The structural and morphological characterizations of the received anodic oxide layers were performed by field emission scanning electron microscopy (FE-SEM). Therefore, the formed anodic oxide was found to be highly porous with a high surface area, as indicated by the FE-SEM studies. It has been shown that the morphology of fabricated nanoporous oxide layers is strongly affected by the anodization potential. The oxide growth rate first increased slowly (from 0.010 μm/s for 10 V to 0.02 μm/s for 15 V) and then very rapidly (from 0.04 μm/s for 17.5 V up to 0.13 μm/s for 22.5 V). The same trend was observed for the change in the oxide thickness. Moreover, for all investigated anodizing voltages, the structural features of the anodic oxide layers, such as the pore diameter and interpore distance, increased with increasing anodizing potential. The obtained anodic oxide layer was identified as a crystalline FeAlO, FeO and AlO oxide mixture.

摘要

通过在0°C的20 wt%硫酸中进行两步阳极氧化,在FeAl金属间合金上制备了纳米结构阳极氧化层。电压范围为10.0 - 22.5 V,步长为2.5 V。通过场发射扫描电子显微镜(FE-SEM)对所得阳极氧化层进行结构和形貌表征。因此,如FE-SEM研究所表明的,所形成的阳极氧化层具有高度多孔性和高表面积。研究表明,制备的纳米多孔氧化层的形貌受阳极氧化电位的强烈影响。氧化物生长速率首先缓慢增加(从10 V时的0.010μm/s增加到15 V时的0.02μm/s),然后非常迅速地增加(从17.5 V时的0.04μm/s增加到22.5 V时的0.13μm/s)。氧化物厚度的变化也观察到相同趋势。此外,对于所有研究的阳极氧化电压,阳极氧化层的结构特征,如孔径和孔间距,随着阳极氧化电位的增加而增加。所获得的阳极氧化层被鉴定为结晶的FeAlO、FeO和AlO氧化物混合物。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/efcf/6678330/d2cd0fba18f9/materials-12-02299-g001.jpg

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