Santos Janaina Soares, Araújo Patrícia Dos Santos, Pissolitto Yasmin Bastos, Lopes Paula Prenholatto, Simon Anna Paulla, Sikora Mariana de Souza, Trivinho-Strixino Francisco
Department of Physics, Chemistry and Mathematics, Federal University of São Carlos (UFSCar), Via João Leme dos Santos Km 110, Sorocaba 18052-780, Brazil.
Department of Chemistry, Universidade Tecnológica Federal do Paraná (UTFPR), Via do Conhecimento Km 1, Pato Branco 85503-390, Brazil.
Materials (Basel). 2021 Jan 14;14(2):383. doi: 10.3390/ma14020383.
This review addresses the main contributions of anodic oxide films synthesized and designed to overcome the current limitations of practical applications in energy conversion and storage devices. We present some strategies adopted to improve the efficiency, stability, and overall performance of these sustainable technologies operating via photo, photoelectrochemical, and electrochemical processes. The facile and scalable synthesis with strict control of the properties combined with the low-cost, high surface area, chemical stability, and unidirectional orientation of these nanostructures make the anodized oxides attractive for these applications. Assuming different functionalities, TiO-NT is the widely explored anodic oxide in dye-sensitized solar cells, PEC water-splitting systems, fuel cells, supercapacitors, and batteries. However, other nanostructured anodic films based on WO, CuO, ZnO, NiO, SnO, FeO, ZrO, NbO, and TaO are also explored and act as the respective active layers in several devices. The use of AAO as a structural material to guide the synthesis is also reported. Although in the development stage, the proof-of-concept of these devices demonstrates the feasibility of using the anodic oxide as a component and opens up new perspectives for the industrial and commercial utilization of these technologies.
本综述阐述了为克服当前在能量转换和存储设备实际应用中的局限性而合成和设计的阳极氧化膜的主要贡献。我们介绍了为提高这些通过光、光电化学和电化学过程运行的可持续技术的效率、稳定性和整体性能而采用的一些策略。这些纳米结构易于合成且可扩展,其性能得到严格控制,同时具有低成本、高表面积、化学稳定性和单向取向等特点,使得阳极氧化膜在这些应用中颇具吸引力。考虑到不同的功能,TiO-NT是染料敏化太阳能电池、光电化学水分解系统、燃料电池、超级电容器和电池中广泛研究的阳极氧化膜。然而,基于WO、CuO、ZnO、NiO、SnO、FeO、ZrO、NbO和TaO的其他纳米结构阳极膜也在被研究,并在多种器件中充当各自的活性层。也有报道将阳极氧化铝(AAO)用作引导合成的结构材料。尽管仍处于开发阶段,但这些器件的概念验证证明了使用阳极氧化膜作为组件的可行性,并为这些技术的工业和商业应用开辟了新的前景。