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Oxide Thin Films and Nanostructures最新文献

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Surface chemistry, energy conversion, and related applications. 表面化学、能量转换及相关应用。
Pub Date : 2021-02-25 DOI: 10.1093/oso/9780198834618.003.0008
F. Netzer, C. Noguera
Oxide nanomaterials have an impact in many interdisciplinary fields of the emerging nanotechnologies as reported here. They are components of heterogeneous catalyst systems with specific features that are outlined. In photocatalysis, chemical reactions are catalytically enabled by photon-energy conversion: oxide photocatalysts are prominent and discussed in relation to the photochemical water splitting reaction. Solid oxide fuel cells are promising energy sources, in which oxide nanomaterials are expected to boost further progress. Solar energy materials are elements of the “green chemistry” revolution for energy saving: the chromogenic functionality of oxide nanolayers with use in advanced fenestration is introduced. The formation and structure of corrosion protective nanolayer oxides, which is vital for the everyday use of metallic components, are examined. Biotechnology applications of oxide nanostructures comprise their biocompatibility, antibacterial properties, theranostic systems as well as biosensor platforms. An interesting bioapplication of ferroelectric oxide thin films is reported.
氧化物纳米材料在许多新兴纳米技术的交叉领域产生了影响。它们是具有特定特征的多相催化剂系统的组成部分。在光催化中,化学反应是通过光能转换催化实现的:氧化物光催化剂是突出的,并与光化学水分解反应有关。固体氧化物燃料电池是一种很有前途的能源,其中氧化物纳米材料有望推动进一步的发展。太阳能材料是节能的“绿色化学”革命的要素:氧化物纳米层的显色功能与先进的开窗的使用介绍。腐蚀防护纳米层氧化物的形成和结构,这是至关重要的日常使用的金属部件,进行了检查。氧化物纳米结构的生物技术应用包括其生物相容性、抗菌性能、治疗系统以及生物传感器平台。报道了铁电氧化物薄膜的一个有趣的生物应用。
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引用次数: 0
Oxide nanoparticles 氧化物纳米颗粒
Pub Date : 2021-02-25 DOI: 10.1093/oso/9780198834618.003.0006
F. Netzer, C. Noguera
Oxide micro- and nanoparticles are ubiquitous in the natural environment. They have long been used as catalysts, but have found novel applications with the advent of nanotechnologies. From a fundamental point of view, they bridge the gap between the properties of isolated atoms or molecules and those of bulk condensed phases. They present a large spectrum of atomic and electronic structures, due to their finite size in the three dimensions of space and the fact that their atoms are nearly all surface atoms. They represent the first stages of nucleation and growth of larger size oxides, and their stability and properties which depend upon the thermodynamic conditions under which they are formed, largely impact the final product. This chapter reviews their specific properties and analyses their physical origin, both when they are produced in the gas phase, in an aqueous environment, or when cation mixing takes place.
氧化微粒和纳米颗粒在自然环境中无处不在。它们长期以来一直被用作催化剂,但随着纳米技术的出现,它们有了新的应用。从一个基本的观点来看,它们弥补了孤立原子或分子的性质与大块凝聚相的性质之间的差距。由于它们在三维空间中的尺寸有限,而且它们的原子几乎都是表面原子,因此它们呈现出大量的原子和电子结构。它们代表了大尺寸氧化物成核和生长的第一个阶段,它们的稳定性和性质取决于它们形成的热力学条件,在很大程度上影响最终产物。本章回顾了它们的特殊性质,并分析了它们在气相、水环境或阳离子混合发生时的物理来源。
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引用次数: 8
Synopsis and outlook 概述与展望
Pub Date : 2021-02-25 DOI: 10.1093/OSO/9780198834618.003.0009
F. Netzer, C. Noguera
The synopsis part of this last chapter gives a brief summary of the book content. The outlook attempts to identify future areas of scientific activity, in which according to the authors´ visions nano-oxide materials may promote new developments. Among them are the controlled synthesis of oxide nanosheets and the experimental realization of oxide nanoribbons. The preparation of well-defined oxide heterostructures may reveal novel emergent states and new topological phases of matter. Mixed nano-oxides will be of interest for band structure engineering and to adjust band edges for photochemical reactivity. Programmable defect chemistry may open up new selective pathways for catalytic reactions. In parallel with experimental progress, advanced theoretical and simulation methods will take advantage of the ever-increasing computer power to tackle highly correlated materials and allow highthroughput computing. The interaction of nano-oxides with biological systems has great potential for opening up new avenues in the biotechnological area.
最后一章的概要部分对本书的内容进行了简要的总结。展望试图确定未来的科学活动领域,根据作者的愿景,纳米氧化物材料可能会促进新的发展。其中包括氧化纳米片的可控合成和氧化纳米带的实验实现。良好定义的氧化物异质结构的制备可能揭示新的涌现状态和新的物质拓扑相。混合纳米氧化物将在能带结构工程和调整能带边缘光化学反应性方面发挥重要作用。可编程缺陷化学可能为催化反应开辟新的选择性途径。与实验进展并行,先进的理论和模拟方法将利用不断增长的计算机能力来处理高度相关的材料,并允许高通量计算。纳米氧化物与生物系统的相互作用在生物技术领域开辟了新的途径。
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引用次数: 0
Methods of study 研究方法
Pub Date : 2021-02-25 DOI: 10.1093/OSO/9780198834618.003.0003
F. Netzer, C. Noguera
The experimental and theoretical characterization of oxide nanostructures is addressed. The experimental techniques are classified according to their information content, revealing atomic geometry, chemical composition, electronic structure as well as magnetic, vibrational and chemical properties. Due to the nanometer scale dimensions of oxide nanosystems, many experimental techniques are derived fom the field of surface science and involve ultrahigh vacuum technology. The quantum-theoretical simulations for the description of oxide materials are presented by progressing from simple to increasingly sophisticated methods; the latter become necessary to accurately treat electron correlation effects, which are significant in many oxide materials, in particular at low dimension. Electronic structure methods, total energy methods and atomic structure simulation methods are introduced and discussed.
讨论了氧化纳米结构的实验和理论表征。实验技术根据其信息量进行分类,揭示原子几何、化学组成、电子结构以及磁性、振动性和化学性质。由于氧化物纳米系统的纳米尺度,许多实验技术来源于表面科学领域,并涉及超高真空技术。描述氧化物材料的量子理论模拟方法由简单的方法发展到日益复杂的方法;后者对于精确地处理电子相关效应是必要的,这在许多氧化物材料中是重要的,特别是在低维度。介绍并讨论了电子结构方法、总能量方法和原子结构模拟方法。
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引用次数: 0
Clay mineral layers and nanoparticles 粘土矿物层和纳米颗粒
Pub Date : 2021-02-25 DOI: 10.1093/OSO/9780198834618.003.0007
F. Netzer, C. Noguera
This chapter provides an introduction to the properties of naturally occurring oxide ultra-thin films and nanoparticles of complex composition, namely clay minerals. Clays represent a wide family of nanomaterials, formed from the weathering of primary rocks at the Earth surface. Their layered structure is responsible for their extreme anisotropy and their extremely high specific surface area which is at the origin of their unique properties and of their strong interaction with their surrounding. The focus of this chapter is on their structural and composition characteristics, the conditions of their formation, their interaction with water and their chemical properties. A mention is given of their uses in human cultural activities, in dwelling constructions and statuary, in porcelain fabrication, in retention of metal contaminants in the environment, in the pharmaceutical and cosmetic industries, and as lubricants, catalysts, therapeuthic agents, among others.
本章介绍了天然存在的氧化超薄膜和复杂组成的纳米颗粒的性质,即粘土矿物。粘土是一大类纳米材料,由地球表面原生岩石的风化作用形成。它们的层状结构导致了它们极端的各向异性和极高的比表面积,这是它们独特性质的起源,也是它们与周围环境强烈相互作用的原因。本章的重点是它们的结构和组成特征,它们的形成条件,它们与水的相互作用和它们的化学性质。提到了它们在人类文化活动、住宅建筑和雕像、瓷器制造、在环境中保留金属污染物、在制药和化妆品工业、以及作为润滑剂、催化剂、治疗剂等方面的用途。
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引用次数: 0
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Oxide Thin Films and Nanostructures
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