The effect of nanoparticles on the evolution of microstructure in polar ice (NEMI)
The effect of nanoparticles on the evolution of microstructure in polar ice (NEMI)
批准号:
238008082
负责人:
Dr. Maddalena Bayer-Giraldi
金额:
$0.0万
依托单位国家:
德国
项目类别:
Infrastructure Priority Programmes
财政年份:
2013
资助国家:
德国
项目状态:
已结题
起止时间:
2012-12-31 至 2018-12-31
中文摘要
在南极和格陵兰岛的冰原和冰川层中观测到的软冰与小粒度和杂质的存在有关。一般认为杂质通过固定晶界从而抑制其迁移来控制晶粒尺寸。然而,很大的不确定性仍然存在,即杂质是造成这种影响的原因。关于不溶性微粒和可溶性离子的数据对它们在冰中的存在以及它们在抑制晶界迁移方面的相关性给出了不完整的描述。最近的数据清楚地表明,钙离子浓度影响硬冰和浅冰的致密化。没有理由认为这种相关性不适用于更深的冰。然而,尚不清楚这种效果是由钙直接引起的,还是由其他杂质引起的。理论强调纳米粒子的作用,但由于在冰中很难探测到这种粒径范围,计算结果没有实验证据的支持。因此,为了了解纳米颗粒如何影响晶界迁移,我们将不同种类的纳米颗粒应用于多晶冰。我们专注于从极性硅藻中提取的抗冻蛋白(AFPs),这是一种已知能抑制晶粒生长的颗粒。我们把这些蛋白质看作是冰中的纳米颗粒的类似物。然而,考虑到北极和南极的深层冰中居住着微生物,这些微生物可能通过风的运输到达中心地区,然后被包括在冰盖中,考虑到极地地区普遍存在afp,可以想象,南极和格陵兰岛的冰中确实存在蛋白质。除AFPs外,钙和选定的其他纳米颗粒将应用于实验。我们将主要研究冷冻的多晶颗粒溶液,通过从冰I到冰II再回到冰I的相变方法,晶粒细且无变形。我们将观察与时间、温度、颗粒类型和浓度有关的晶界。晶粒微观结构将由光学显微镜、拉曼光谱和自动织物分析仪测定。在第二步中,我们将分析掺杂颗粒的雪,从而类似于自然条件。此外,为了了解粒子在边界迁移过程中的行为,无论它们是过度生长还是被迁移边界拖拽,我们将确定它们在冰中的定位。在最后一步中,荧光纳米粒子将在激光共聚焦显微镜下应用和观察,根据前一步获得的结果选择更有希望的实验条件。该项目旨在通过跨学科的努力,填补冰芯分析和防冻研究领域的空白,解决纳米颗粒在影响多晶冰微观结构中的作用,特别强调afp。
英文摘要
The soft ice observed in Antarctic and Greenland firn and glacial ice layers is related to small grain size and the presence of impurities. It is generally assumed that the impurities control the grain size by pinning grain boundaries and thus inhibiting their migration. However, large uncertainties persist on which impurities are responsible for this effect. Data on insoluble microparticles and soluble ions give an incomplete picture of their presence in ice and of their relevance in inhibiting grain boundary migration. Recent data show a clear evidence that calcium ion concentration affects densification in firn and shallow ice. There is no reason to assume that this correlation should not hold for deeper ice. However, it is unknown whether the effect is caused directly by calcium or if it is a proxy for some other impurity. Theory stresses the role of nanoparticles, but calculations are not supported by experimental evidence due to the fact that this particle size range is difficult to detect in ice. Therefore, in order to understand how nanoparticles affect grain boundary migration, we apply different kinds to polycrystalline ice. We focus on antifreeze proteins (AFPs) from polar diatoms, particles known to inhibit grain growth. We regard these proteins as analogues of nanoparticles within ice. However, considering that Arctic and Antarctic deep ice is populated by microorganisms, which may have reached the central regions by wind transport and then been included in the ice sheets, and considering that AFPs are widespread in the polar regions, it is conceivable that proteins are indeed present in Antarctic and Greenland ice. Besides AFPs, calcium and selected other nanoparticles will be applied to the experiments. We will work mainly with frozen polycrystalline particle solution, fine-grained and free of deformations through a phase-transition method from ice I to ice II and back to ice I. Grain boundaries will be observed in relation to time, temperature, particle type and concentration. Grain microstructure will be determined by optical microscopy, Raman spectroscopy and an Automated Fabric Analyzer. In a second step we will analyze snow doped with particles, thus resembling natural conditions. Furthermore, in order to understand how particles behave during boundary migration, whether they are overgrown or dragged along by the migrating boundaries, we will determine their localization in ice. In this last step fluorescent nanoparticles will be applied and observed at laser confocal microscopy, choosing the more promising experimental conditions based on the obtained results from previous steps.Addressing the role of nanoparticles in affecting the microstructure of polycrystalline ice with special emphasis on AFPs, this project aims to close, in an interdisciplinary effort, open gaps in both ice-core analysis and antifreeze research.
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Multiple binding modes of a moderate ice-binding protein from a polar microalga.
来自极性微藻的中等冰结合蛋白的多种结合模式
DOI:
10.1039/c8cp04727h
发表时间:
2018
期刊:
Physical chemistry chemical physics : PCCP
影响因子:
--
作者:
[Mochizuki, Bayer-Giraldi]
通讯作者:
Bayer-Giraldi
DOI:
10.1127/algol_stud/2016/0252
发表时间:
2016
期刊:
Algological Studies
影响因子:
--
作者:
[Kutschan, Bayer-Giraldi]
通讯作者:
Bayer-Giraldi
DOI:
10.5194/tc-11-1075-2017
发表时间:
2017-05-05
期刊:
CRYOSPHERE
影响因子:
5.2
作者:
[Eichler, Jan, Kleitz, Ina, Weikusat, Ilka]
通讯作者:
Weikusat, Ilka
DOI:
10.1073/pnas.1807461115
发表时间:
2018-07-17
期刊:
PROCEEDINGS OF THE NATIONAL ACADEMY OF SCIENCES OF THE UNITED STATES OF AMERICA
影响因子:
11.1
作者:
[Bayer-Giraldi, Maddalena, Sazaki, Gen, Furukawa, Yoshinori]
通讯作者:
Furukawa, Yoshinori
国内基金
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