Understanding the Intrinsic Rectification Properties of Nanoporous Anodic Alumina by Selective Chemical Etching

纳米孔 材料科学 阳极氧化 整改 化学物理 空间电荷 电荷密度 阳极 电解质 电场 蚀刻(微加工) 纳米技术 离子键合 氧化物 电流密度 空位缺陷 离子 光电子学 图层(电子) 凝聚态物理 电子 物理化学 电极 复合材料 化学 电压 电气工程 有机化学 冶金 工程类 物理 量子力学
作者
Juan Wang,Cheryl Suwen Law,Satyathiran Gunenthiran,Siew Yee Lim,Khanh Nhien Vu,Van Truc Ngo,Kornelius Nielsch,Andrew D. Abell,Abel Santos
出处
期刊:ACS Applied Materials & Interfaces [American Chemical Society]
卷期号:15 (39): 45981-45996 被引量:5
标识
DOI:10.1021/acsami.3c08745
摘要

The distribution of oxygen and aluminum vacancies across the hemispherical barrier oxide layer (BOL) of nanoporous anodic alumina (NAA) relies intrinsically on the electric field-driven flow of electrolytic species and the incorporation of electrolyte impurities during the growth of anodic oxide through anodization. This phenomenon provides new opportunities to engineer BOL's inherited ionic current rectification (ICR) fingerprints. NAA's characteristic ICR signals are associated with the space charge density gradient across BOL and electric field-induced ion migration through hopping from vacancy to vacancy. In this study, we engineer the intrinsic space charge density gradient of the BOL of NAA under a range of anodizing potentials in hard and mild anodization regimes. Real-time characterization of the ICR fingerprints of NAA during selective etching of the BOL makes it possible to unravel the distribution pattern of vacancies through rectification signals as a function of etching direction and time. Our analysis demonstrates that the space charge density gradient varies across the BOL of NAA, where the magnitude and distribution of the space charge density gradient are revealed to be critically determined by anodizing the electrolyte, regime, and potential. This study provides a comprehensive understanding of the engineering of ion transport behavior across blind-hole NAA membranes by tuning the distribution of defects across BOL through anodization conditions. This method has the potential to be harnessed for developing nanofluidic devices with tailored ionic rectification properties for energy generation and storage and sensing applications.

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