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Modelling and characterisation of electron beam processed low dimensional nanomaterials

Modelling and characterisation of electron beam processed low dimensional nanomaterials
电子束加工低维纳米材料的建模和表征
批准号:
1939779
负责人:
金额:
$0.0万
依托单位:
依托单位国家:
英国
项目类别:
Studentship
财政年份:
2017
资助国家:
英国
项目状态:
已结题
起止时间:
2017 至 --

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中文摘要
翻译
高分辨率透射电子显微镜HRTEM已成为研究低维纳米材料(如石墨烯或碳纳米管)结构的常用工具。在推进TEM的当前能力的主要挑战,超越原子尺度上的结构分析,包括1建立TEM作为材料动态转变的定量表征的主要工具;和2使新的合成路线的控制修改的低维材料使用电子束电子束作为直接处理工具。HRTEM和STEM的一个范式转变是对纳米材料中单个原子的受控操纵和定位,称为“原子锻造”。HRTEM的最新进展为原子精度的材料控制铺平了道路,这一过程目前只能通过扫描隧道显微镜STM实现,但具有室温稳定性和整个材料3D体积的可访问性的固有优势,没有与STM相关的低温表面组装限制。电子束作为最终的合成工具成为现实,需要在理论和实验上全面理解基本水平上的材料特性,即它们在处理电子束下的动态行为和相互作用。这个博士项目将专注于电子束照射下的材料的研究,结合计算建模和成像与原子尺度分辨率的见解,预测和解释在TEM中处理的低维纳米材料的动态行为。它将涉及密切的,反复比较理论预测贝斯利,化学与实验TEM观察布朗,工程。该项目将利用化学学院计算纳米科学组的广泛专业知识,涵盖广泛的计算技术,从模拟具有经典势的接近50万原子的大规模系统到高水平密度泛函理论计算。电子束对结构转换的动态影响将使用该小组的内部CompuTEM算法进行明确建模,从而产生多切片图像模拟,用于与具有原子分辨率的实验TEM图像进行直接比较。
英文摘要
Scientific context and collaborationHigh resolution transmission electron microscopy HRTEM has become a common tool for studying the structures of low dimensional nanomaterials, such as graphene or carbon nanotubes. Major challenges in advancing the current capabilities of TEM, beyond structural analysis on the atomic-scale, include 1 establishing TEM as the primary tool for the quantitative characterisation of material dynamic transformations; and 2 enabling novel synthetic routes for the controlled modification of low-dimensional materials using the electron beam e-beam as a direct processing tool. A paradigm shift for HRTEM and STEM is the controlled manipulation and positioning of individual atoms within a nanomaterial, termed "The Atomic Forge". The latest advances in HRTEM are paving the way for the control of materials with atomic precision, a process currently achievable only by scanning tunnelling microscopy STM, but with the inherent advantages of stability at room temperature and accessibility throughout the 3D volume of the material, free of the low temperature surface assembly limitations associated with STM Turning the dream of using the e- beam as the ultimate synthetic tool into a reality requires comprehensive understanding, both theoretically and experimentally, of material properties at the fundamental level, in terms of their dynamic behaviour and interaction under the processing e-beam. This PhD project will focus on the investigation of materials under e-beam irradiation, combining the insights of computational modelling and imaging with atomic scale resolution, to predict and explain the dynamic behaviour of low dimensional nanomaterials processed in the TEM. It will involve the close, iterative comparison of theoretical predictions Besley, Chemistry with experimental TEM observations Brown, Engineering. The project will take advantage of the extensive expertise, based in the Computational Nanoscience group, in the School of Chemistry, across a wide range of computational techniques, from modelling large scale systems approaching 500k atoms with classical potentials to high-level density functional theory calculations. The dynamic effects of the e-beam on structure transformations will be modelled explicitly using the group's in-house CompuTEM algorithm resulting in multislice image simulations for direct comparison with experimental TEM images with atomic resolution.
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