Automated on-line monitoring of a lithium hydroxide production process using micro-discharge OES†

IF 3.1 2区 化学 Q2 CHEMISTRY, ANALYTICAL Journal of Analytical Atomic Spectrometry Pub Date : 2024-12-17 DOI:10.1039/D4JA00330F
Bastian Wiggershaus, Miisamari Jeskanen, Aappo Roos, Toni Laurila and Carla Vogt
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Abstract

The fast, precise and continuous on-line analysis of highly saline process solutions is challenging for conventional laboratory techniques like ICP-OES or ICP-MS due to the necessity of high plasma gas flow rates (Ar and He), a high power consumption and the limited resistance of the sensitive spectrometer technique to harsh on-site conditions like dust, vibrations or temperature fluctuations. Therefore, an on-site and on-line method with comparable performance despite such conditions would be preferable. In this study we used the Micro-Discharge Optical Emission Spectroscopy (μDOES) for the given challenge of monitoring fully automated on-site and on-line production of lithium hydroxide, which is an essential precursor for the battery industry. The technology is based on creating a micro-plasma directly inside the aqueous sample without any carrier gas by using electrodes and high voltage pulses and thus enabling optical emission spectroscopy on-site. After optimisation of several parameters like sample conductivity, signal integration settings or selection of emission lines, measurements were carried out at an industrial pilot plant. The entire process chain was monitored, starting with the leaching of the calcined lithium-containing ore, through several intermediate products to the end product lithium hydroxide monohydrate of battery grade. The individual process steps were measured continuously (10–20 h), simplifying the monitoring of the process and allowing trends in the concentrations of the elements Li, Na, K, Ca, Mg and Rb to be identified. Reference measurements were performed using laboratory ICP-OES and/or ion chromatography to verify the results. Micro-discharge OES proved to be useful for a fast and precise on-site and on-line analysis of saline solutions with good long-term stability and a high agreement with the used reference methods, resulting in deviations below 10% for the most important components Li, Na and K.

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利用微放电OES†对氢氧化锂生产过程进行自动在线监测
对于ICP-OES或ICP-MS等传统实验室技术来说,高盐工艺溶液的快速、精确和连续在线分析具有挑战性,因为需要高等离子体气体流速(Ar和He)、高功耗以及敏感光谱仪技术对恶劣现场条件(如灰尘、振动或温度波动)的有限阻力。因此,在这种条件下,更可取的是具有相当性能的现场和在线方法。在这项研究中,我们使用微放电光学发射光谱(μDOES)来监测氢氧化锂的全自动现场和在线生产,氢氧化锂是电池工业的重要前体。该技术的基础是直接在含水样品中产生微等离子体,而不需要任何载气,通过使用电极和高压脉冲,从而实现现场光学发射光谱。在对样品电导率、信号集成设置或发射线选择等几个参数进行优化后,在工业试验工厂进行了测量。整个过程链都进行了监控,从焙烧含锂矿石的浸出开始,经过几个中间产品,最终得到电池级的一水氢氧化锂。连续测量各个过程步骤(10-20 h),简化了过程的监测,并允许识别元素Li, Na, K, Ca, Mg和Rb的浓度趋势。参考测量采用实验室ICP-OES和/或离子色谱法来验证结果。事实证明,微放电OES可用于盐溶液的快速、精确的现场和在线分析,具有良好的长期稳定性,与使用的参考方法高度一致,导致最重要的组分Li、Na和K的偏差低于10%。
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来源期刊
CiteScore
6.20
自引率
26.50%
发文量
228
审稿时长
1.7 months
期刊介绍: Innovative research on the fundamental theory and application of spectrometric techniques.
期刊最新文献
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