Interface diagnostics platform for thin-film solid-state batteries†

IF 30.8 1区 材料科学 Q1 CHEMISTRY, MULTIDISCIPLINARY Energy & Environmental Science Pub Date : 2025-01-07 DOI:10.1039/D4EE03915G
Victoria C. Ferrari, Sang Bok Lee, Gary W. Rubloff and David M. Stewart
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Abstract

Understanding the impedances of battery materials and their interfaces remains a major challenge, usually addressed by electrochemical impedance spectroscopy (EIS) where frequency-dependent complex impedance of full battery cells is measured and then modeled by a network of connected electrical elements. As conventionally applied, this approach produces ambiguity in that (1) multiple different network configurations may fit the data convincingly and (2) the method offers no direct association of the electrical elements with physical features of the battery. Here we present a new methodology that resolves both sources of ambiguity, enabled by expanding the experimental scope to directly inform the configuration of elements and their parameters in the network model. We demonstrate this methodology using thin film fabrication of solid state battery devices patterned by shadow masked sputter deposition, so that diagnostic devices corresponding to individual interface and material components can be fabricated simultaneously with full cell batteries. EIS models for the diagnostic devices can then be connected to form full cell networks whose topology matches the well-known physical configuration of the battery. When connected in this way, the full network model – made from connecting the diagnostic device EIS models – fits the full cell EIS data. For the case of a thin film solid state battery composed of amorphous silicon anode, lithium phosphorus oxynitride (LiPON) solid electrolyte, and lithium vanadium oxide (LixV2O5) cathode, we show that the approach allows us to identify ionic impedance/conductivity of the cathode/electrolyte as a limiting impedance and the anode/electrolyte interface cycling instability as a primary degradation factor.

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薄膜固态电池接口诊断平台
了解电池材料及其界面的阻抗仍然是一个主要挑战,通常通过电化学阻抗谱(EIS)来解决,其中测量全电池单元的频率相关复杂阻抗,然后通过连接的电气元件网络进行建模。在传统应用中,这种方法会产生歧义,因为(1)多个不同的网络配置可能令人信服地拟合数据,(2)该方法没有将电气元件与电池的物理特性直接联系起来。在这里,我们提出了一种新的方法,通过扩大实验范围来直接告知网络模型中元素及其参数的配置,从而解决了这两种模糊性的来源。我们用薄膜制造方法演示了这种方法,这种方法是由阴影遮蔽溅射沉积形成的固态电池器件,因此,对应于单个界面和材料组件的诊断设备可以与全电池同时制造。然后,诊断设备的EIS模型可以连接起来,形成完整的单元网络,其拓扑结构与众所周知的电池物理配置相匹配。当以这种方式连接时,整个网络模型-由连接诊断设备EIS模型制成-适合全单元EIS数据。对于由非晶硅阳极、氧化氮磷锂(LiPON)固体电解质和氧化钒锂(LixV2O5)阴极组成的薄膜固态电池,我们表明,该方法使我们能够确定阴极/电解质的离子阻抗/电导率为限制阻抗,阳极/电解质界面循环不稳定性为主要降解因素。
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来源期刊
Energy & Environmental Science
Energy & Environmental Science 化学-工程:化工
CiteScore
50.50
自引率
2.20%
发文量
349
审稿时长
2.2 months
期刊介绍: Energy & Environmental Science, a peer-reviewed scientific journal, publishes original research and review articles covering interdisciplinary topics in the (bio)chemical and (bio)physical sciences, as well as chemical engineering disciplines. Published monthly by the Royal Society of Chemistry (RSC), a not-for-profit publisher, Energy & Environmental Science is recognized as a leading journal. It boasts an impressive impact factor of 8.500 as of 2009, ranking 8th among 140 journals in the category "Chemistry, Multidisciplinary," second among 71 journals in "Energy & Fuels," second among 128 journals in "Engineering, Chemical," and first among 181 scientific journals in "Environmental Sciences." Energy & Environmental Science publishes various types of articles, including Research Papers (original scientific work), Review Articles, Perspectives, and Minireviews (feature review-type articles of broad interest), Communications (original scientific work of an urgent nature), Opinions (personal, often speculative viewpoints or hypotheses on current topics), and Analysis Articles (in-depth examination of energy-related issues).
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