H2020Индивидуална стипендия2020–2022

BeamSense · Making more with less: intelligent wavefront design to enable high resolution images of unstable samples.

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2020-11-01 → 2022-10-31
Финансиране от ЕС
224 934 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Интелигентният дизайн на електронния лъч позволява създаването на ясни изображения на нестабилни материали, като например тези в батериите и слънчевите панели. Това помага за по-доброто разбиране на връзката между структурата на материалите и техните свойства.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

Making more with less: intelligent wavefront design to enable high resolution images of unstable samples.

In the modern electron microscope, for some materials (typically metals), we can form atomic resolution images relatively easily and and with sufficient clarity to understand atomic positions, bonding and defects to in how the atoms are packed with a crystalline ordering. These atomic scale ordering defects can lead to large scale changes to the properties of the material (such as charge-transfer mechanisms, magnetic structures or strength) - so understanding the atomic structure and ordering of materials is key to understanding global scale properties of materials. However, many societally important materials (such as photovoltaics - used in solar cells, or battery materials, or pharmacuetical materials) cannot be imaged in this way - the electron beam used to form the images instead damages the sample (damage mechanisms can include heating, localised charging, knocking atoms out of the sample, amongst others). These processes prevent clear images being obtained by using standard electron microscopy imaging protocols. Lacking clear images of these materials hampers our understanding of how their structure and properties are correlated. My overall research objective is to lift this bottleneck, and enable high-resolution, clear images of all materials science samples. The societal value of this fundamental research comes through in the applications it enables - clearer images of prototypical photovoltaics will enable a more rapid development of efficient sola panels, clearer images of new battery materials will accelerate our understanding of why different options fail to cycle successfully - and so on - materials science progress is built upon progress of accurate materials characterisation. In this fellowship, I studied a family of algorithms referred to as "ptychography", investigating the potential of these algorithms to enable us to form higher resolution images with a lower electron dose. Ptychographic algorithms (as applied in the scanning transmission electron microscope) make use of every scattered electron that lands on the detector in a diffraction pattern - analysing the position it is scattered to, and how these positions vary with the position of the incoming focussed electron beam can tell us more about the sample, at a higher resolution, than can be interpreted from the conventional bright-field, or dark-field imaging datasets. Early in this research, it was realised that we lacked verification that these methods can be applied to thick samples, as these scatter the electron beam more than once as it passes through the sample, in a manner not accounted for in the mathematics underlying the algorithm - verifying that these samples could be imaged by using electron ptychography, and verifying the limits of this, became the main focus of this project as the first hurdle to overcome towards the greater goal.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

The resolution of images formed using scanning transmission electron microscopes (STEMs) is no longer limited by optical limits of the microscope, but instead by sample damage during acquisition. The image is formed by a highly focused beam of electrons being scanned across the specimen, with diffraction intensities recorded at each probe position. However, the beam can also cause localised heating and rearrangement of the atomic structure – and it is this movement that ultimately limits the image quality.Electron-beam-induced specimen damage is particularly severe for weakly-bound compounds, such as battery materials, photovoltaics or pharmaceuticals. The inability to visualise the atomic structure of these materials easily is a severe impediment to research progress in their respective fields. Overcoming the beam-damage roadblock would have a profound impact across many scientific disciplines. This can be achieved by significantly reducing the number of electrons required to form an image. The mechanics of image formation in STEMs is largely unchanged since their first demonstration 80 years ago: the probe is formed by illuminating a circular aperture with a planar electron wave, brought to a focus on the sample and raster scanned. Portions of the scattered intensity are collected to determine the intensity of the pixel associated with each probe position. Electron detectors have developed significantly in recent years - while the probe-forming apertures have received less attention. A circular aperture creates a probe with broad tails, and an image with only weak contrast, thus requiring many electrons to achieve good signal-to-noise. I have previously developed methods to reshape the electron beam to generate angular momentum. In this work, I will apply related methods to increase the image contrast by intelligent shaping of the wave front. This will reduce the required electron dose, and thus enable atomic resolution STEM imaging of beam sensitive materials.

Оригинален текст от CORDIS (на английски).

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Данни: CORDIS, © Европейски съюз