High performance laboratory X-ray absorption spectroscopy system
High performance laboratory X-ray absorption spectroscopy system
批准号:
426693405
负责人:
金额:
$0.0万
依托单位国家:
德国
项目类别:
Major Research Instrumentation
财政年份:
2020
资助国家:
德国
项目状态:
未结题
起止时间:
2019-12-31 至 --
中文摘要
我们的目标是更好地理解功能高分子材料和二次资源中非晶结构的化学性质。聚合物电解质膜(PEMs)是钒氧化还原液流电池(VRFB)等电化学装置的重要组成部分。它们同时作为独特的离子导体和离子屏障。在vrfb中,PEM理想地传输质子,并且不渗透钒离子。钒离子的交叉是vrfb容量衰减的主要原因。虽然这一现象已经得到了很好的研究,特别是在Nafion上,但质子交换膜中离子的传输尚不清楚。膜内的介观水合通道是由磺酰基和水的亲水性相互作用形成的,其化学性质与自由水的化学性质大不相同。我们的具体目标是确定有助于钒离子在膜中运输的化学反应和相互作用,例如与磺酰基的相互作用和钒氧化还原对的反应。我们研究了Nafion和新型PEMs,它们价格较低,可以设计具有可变特性,如交联剂的梯度。实验室x射线吸收光谱仪系统(L-XAFS)可以直接测定水合膜中钒离子的氧化状态和化学环境,这是其他方法难以研究的。我们将在项目过程中获得的理解将使我们和其他人能够开发出更具选择性的膜。此外,我们将致力于更好地了解在回收渣中非晶和结晶化合物的形成。长期目标是找到一种经济的方法从回收的炉渣中回收关键元素。这可以通过在工程人工矿物(EAMs)中富集关键元素来合成非晶和晶体化合物来实现。对炉渣中非晶组分的形成和结构所知甚少。我们的初步研究表明,氧化还原活性元素如锰有直接影响。虽然x射线衍射可以跟踪晶体结构的形成,但很难研究非晶结构的形成。我们的具体目标是更好地了解锰,特别是其价态对锂离子电池回收渣中非晶结构和eam形成的影响。L-XAFS允许我们研究非晶结构的特性,并使用适当的实验参数来研究它们的形成。我们期望对这一进程取得基本的了解,这也将适用于其他制度。到目前为止,XAFS几乎只在同步加速器源上可用。x射线光学和x射线管的新发展现在可以在实验室中使用本提案所涉及的系统快速执行大多数必要的分析。
英文摘要
Our objective in this proposal is to better understand the chemistry of amorphous structures in functional polymer materials and secondary resources. Polymer electrolyte membranes (PEMs), are an important part of many electrochemical units like Vanadium redox flow batteries (VRFB). They serve as unique ion conductors and ion barriers simultaneously. In VRFBs the PEM is ideally transporting protons and is impermeable for Vanadium ions. The cross over of Vanadium ions is a main reason for capacity fade in VRFBs. Though this phenomenon is well studied especially on Nafion, the transport of ions in the PEM is not yet understood. The chemistry inside of the mesoscopic, hydrated channels inside the membrane, which are formed by hydrophilic interactions of the sulfonyl-groups and water, is quite different from that of free water. Our specific aim is to identify chemical reactions and interactions which are contributing to Vanadium ion transport in the membrane e.g. interaction with the sulfonyl groups and reactions of Vanadium redox pairs. We study Nafion and novel PEMs which are less expensive and can be designed with variable characteristics e.g. gradient of cross linkers. The laboratory X-ray absorption spectrometer system (L-XAFS) will allow us to determine the oxidation state and the chemical surrounding of Vanadium ions directly in the hydrated membrane which is difficult to study other vice. The understanding we will have gained in the course of the project will enable us and others to develop more selective membranes. Additionally, we will work on a better understanding of the formation of amorphous and crystalline compounds in recycling slags. The longterm goal is to enable an economic way to retrieve critical elements from recycling slags. This can be achieved by synthesizing amorphous and crystalline compounds with the critical elements being enriched in engineered artificial minerals (EAMs). Only little is known on the formation and structure of amorphous components in slags. Our preliminary studies show that redox active elements like Manganese have a directive influence. While the formation of crystalline structures can be followed by X-ray diffraction, it is difficult to study the formation of amorphous structures. Our specific aim is to better understand the influence of Manganese and especially its valence on the formation of amorphous structures and EAMs in slags stemming from the recycling of Li-ion batteries. The L-XAFS allows us to investigate the identity of amorphous structure and with the appropriate experimental parameters also to investigate their formation. we expect to gain a fundamental understanding on this process which will be applicable also to other systems. Until now XAFS is nearly exclusively available at Synchrotron sources. New developments in X-ray optics and X-ray tubes enables now to perform a fast majority of the necessary analyses in the laboratory with the system which is subject to this proposal.
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