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Solid and soft nanostructured materials: Fundamentals and applications

机译:固体和软纳米结构材料:基本原理和应用

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摘要

The scientific work worldwide on nanostructured materials is extensive as well as the work on the applications of nanostructured materials. We will review quasi two-, one- and zero-dimensional solid and soft materials and their applications. We will restrict ourselves to a few examples from partly fundamental aspects and partly from application aspects. We will start with trapping of excitons in semiconductor nanostructures. The subjects are: physical realizations, phase diagrams, traps, local density approximations, and mesoscopic condensates. From these fundamental questions in solid nanomaterials we will move to trapping of molecules in water using nanostructured electrodes. We will also discuss how to manipulate water (create vortices) by nanostructure materials. The second part deals with nanorods (nano-wires). Particularly we will exemplify with ZnO nanorods. The reason for this is that ZnO has: a very strong excitons binding energy (60 meV) and strong photon-excitons coupling energy, a strong tendency to create nanostructures, and properties which make the material of interest for both optoelectronics and for medical applications. We start with the growth of crystalline ZnO nanorods on different substrates, both crystalline (silicon, silicon carbide, sapphire, etc) and amorphous substrates (silicon dioxide, plastic materials, etc) for temperatures from 50℃ up to 900℃. The optical properties and crystalline properties of the nanorods will be analyzed. Applications from optoelectronics (lasers, LEDs, lamps, and detectors) are analyzed and also medical applications like photodynamic cancer therapy are taken up. The third part deals with nano-particles in ZnO for sun screening. Skin cancer due to the exposure from the sun can be prevented by ZnO particles in a paste put on the exposed skin.
机译:全球范围内有关纳米结构材料的科学研究以及有关纳米结构材料应用的工作都十分广泛。我们将审查准二维,一维和零维固体和软材料及其应用。从部分基础方面和部分应用程序方面,我们将仅举几个例子。我们将从在半导体纳米结构中捕获激子开始。主题包括:物理实现,相图,陷阱,局部密度近似和介观冷凝物。从固体纳米材料中的这些基本问题出发,我们将转向使用纳米结构电极捕获水中的分子。我们还将讨论如何通过纳米结构材料来操纵水(产生涡旋)。第二部分涉及纳米棒(纳米线)。特别地,我们将以ZnO纳米棒为例。这样做的原因是ZnO具有:非常强的激子结合能(60 meV)和强光子-激子耦合能,产生纳米结构的强烈趋势,以及使光电和医学应用都感兴趣的材料的特性。我们首先在温度从50℃到900℃的不同衬底上生长晶体ZnO纳米棒,包括晶体(硅,碳化硅,蓝宝石等)和非晶衬底(二氧化硅,塑料等)。将分析纳米棒的光学性质和结晶性质。分析了光电子学中的应用(激光,LED,灯和检测器),还研究了光动力学癌症治疗等医学应用。第三部分涉及用于防晒的ZnO中的纳米粒子。可以通过在暴露在皮肤上的糊剂中的ZnO颗粒来预防由于暴露在阳光下而引起的皮肤癌。

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