FP7Индивидуална стипендия2013–2015

NMRHIPBAT · Solid state nuclear magnetic resonance studies of high-performance battery electrode materials

7РП — „Хора“ (Действия „Мария Кюри“)

Период
2013-02-04 → 2015-02-03
Финансиране от ЕС
200 372 €
Участници
1
Схема
MC-IIF

Линиите свързват координатора с партньорите.

Накратко на български

Металните флуориди и оксиди в литиево-йонните батерии се анализират чрез ядрено магнитен резонанс, за да се разбере как се образуват вещества като LiOH и LiH. Това помага за разбирането на процесите по интерфейсите, които влияят върху живота и безопасността на батериите.

Този кратък обзор е генериран от изкуствен интелект

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

Резултати накратко

Solid state nuclear magnetic resonance studies of high-performance battery electrode materials

Metal fluorides/oxides (MFx/MxOy) are promising electrodes for lithium-ion batteries that operate through conversion reactions. These reactions are associated with much higher energy densities than intercalation reactions, on which the commercial rechargeable lithium ion batteries are based. The fluorides/oxides also exhibit additional reversible capacity beyond their theoretical capacity through mechanism that was poorly understood, in part owing to the difficulty in characterizing structure at the nanoscale, particularly at buried interfaces. This project employs high-resolution multinuclear/multidimensional solid-state NMR techniques, together with theoretical calculations showing that a major contribution to the extra capacity in this system is due to the generation of LiOH and its subsequent reversible reaction with Li to form Li2O and LiH. This study has established a protocol for studying the structure and spatial proximities of nanostructures formed in this system, including amorphous solid electrolyte interphase that grows on all battery electrodes. Socio-economic impacts 1. Battery degradation. Degradation is one of the major issues faced by the leading energy storage technologies. Degradation affects the lifetime of energy storage devices and energy conversion efficiency, e.g. in rechargeable batteries, thus adding to the cost and also causing safety concerns. Most of these degradation reactions occur at electrode-electrolyte interfaces. In order to mitigate this problem, a fundamental understanding of the reaction mechanism at these interfaces is critical. The amorphous nature and complexity of the interfacial structure makes the characterization quite challenging. The protocol developed in this study lends a suitable tool to probe the structure, chemical composition, and the mechanism for these degradation reactions. This characterization method will be attractive to energy-storage industry, which are currently seeking effective ways to minimize the degradation issue by adding various expensive additives into the device without comprehending what kind of reactions occurring and how to optimize the structure of the additive to enhance their efficiency. Since Europe heavily relies on an efficient transport system, which shall be supported by renewable energy sources combined with energy storage systems in the near future. Cost reduction for harvesting and storing energy will be one of the most relevant issues to address. 2. Interface science. This study demonstrates the advantage of solid-state NMR in studying “buried” disordered interfaces. Interfaces exist in all composite materials relevant to energy (catalysis, solar cells, fuel cells), health, materials, and environments, etc. NMR can be used as a useful tool for research of various areas that benefit the society in the short and long run.

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

Цел на проекта

The long-term objective of this project is to develop the next generation of lithium ion battery (LIB) electrode materials with high energy capacity and efficiency, fast charging rate, long lifetime, low cost. These properties are needed for practical applications of rechargeable LIBs in electric cars and socio-economic transition from fossil fuels to cheap, clean, and renewable energy sources. The immediate objective is to study conversion-type electrode materials, particularly the Li/RuO2 system, which has an energy capacity of more than 7 times higher than the currently available LiCoO2 battery electrode, is the only conversion reaction close to 100% coulombically efficient, and exhibits all ideal properties as an electrode. We aim to use insights from the study of this novel compound to improve the functioning of cheaper systems such as FeF3.The structural chemistry and dynamics of Li/RuO2 will be studied by state-of-the-art ex-situ and in-situ multinuclear solid-state NMR spectroscopy and other complementary techniques, such as electrochemical analysis, X-ray diffraction/absorption, and electron microscopy. The changes in structure and dynamics of Li/RuO2 after charge/discharge will be revealed by ex-situ NMR, while the meta-stable chemical phases during battery charge/discharge will be detected by in-situ NMR. Dynamic properties will be studied over a broad temperature range. The electrochemical performance and safety issues will also be evaluated. This study will provide information on what structural features and dynamics of electrode materials will yield desirable battery performance and help select/design materials with optimal electrochemical performance and low cost for the next generation of LIBs.This study will benefit areas including energy, transport, environment, and economy by setting the basis to provide a strong energy storage system for the transition to cheaper, cleaner, and renewable energy sources such as solar and wind""

Оригинален текст от CORDIS (на английски).

Участници

Връзки

Данни: CORDIS, © Европейски съюз