Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques

Lithium slag is an emerging industrial waste due to the increasing demand for lithium rechargeable batteries attributed to the recent boom in the automobile industry and space exploration. It is extracted as a powder residue in sedimentary tanks after the refining process of lithium extraction. In t...

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Main Authors: Javed, Usman, Shaikh, Faiz, Sarker, Prabir Kumar
Format: Journal Article
Language:English
Published: ELSEVIER SCI LTD 2022
Subjects:
Online Access:http://purl.org/au-research/grants/arc/DP200102784
http://hdl.handle.net/20.500.11937/91606
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author Javed, Usman
Shaikh, Faiz
Sarker, Prabir Kumar
author_facet Javed, Usman
Shaikh, Faiz
Sarker, Prabir Kumar
author_sort Javed, Usman
building Curtin Institutional Repository
collection Online Access
description Lithium slag is an emerging industrial waste due to the increasing demand for lithium rechargeable batteries attributed to the recent boom in the automobile industry and space exploration. It is extracted as a powder residue in sedimentary tanks after the refining process of lithium extraction. In this study, the effect of thermo-mechanical processing on the chemical reactivity of lithium slag is assessed by TESCAN Integrated Mineral Analyzer (TIMA), X-ray Fluorescence (XRF), Rietveld quantitative refinement techniques. The chemical, mineral, and crystallographic phase composition of processed lithium slag specimens were assessed and compared by XRF, TIMA, and Rietveld quantitative refinement techniques, respectively. The results of thermo-mechanical processing indicated that the mineral and crystallographic transformation of Spodumene to feldspars (Anorthite, Muscovite, Albite) occurred by crystallite agglomeration. The chemical reactivity of lithium slag is gauged in terms of amorphous alumino-silicates present in feldspars and unidentified phases. Characterization of unidentified phase is evident that it majorly contains micro-nano sized alumino-silicate rich particles with similar spectral signatures to that of feldspar, some fraction of it is aggregated into other phases due to its reactivity. The concentration of the amorphous phase is proportionate with the thermo-mechanical processing energy. However, the thermo-mechanical processing energy is also optimized based on the generation of amorphous phase and reduction in particle size. Therefore, the G1C700 processed regime resulted in one of the maximum amounts of amorphous phase (52.60%). The mineral phase transformation of Spodumene to Anorthite (+10.46%) and unidentified phase (+8.24%) along with D50 value of 13.26 µm, consequently releasing 0.45 kg of carbon emissions upon thermo-mechanical processing. Hence, G1C700 lithium slag is recommended for its use as a geopolymer precursor.
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institution Curtin University Malaysia
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spelling curtin-20.500.11937-916062024-06-07T03:46:31Z Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques Javed, Usman Shaikh, Faiz Sarker, Prabir Kumar Science & Technology Technology Construction & Building Technology Engineering, Civil Materials Science, Multidisciplinary Engineering Materials Science Lithium slag Thermo-mechanical processing Amorphous alumino-silicates Tescan Integrated Mineral Analysis Rietveld quantitative refinement Geopolymer precursor FLY-ASH COMPRESSIVE STRENGTH SPODUMENE ACTIVATION CONCRETE CEMENT Lithium slag is an emerging industrial waste due to the increasing demand for lithium rechargeable batteries attributed to the recent boom in the automobile industry and space exploration. It is extracted as a powder residue in sedimentary tanks after the refining process of lithium extraction. In this study, the effect of thermo-mechanical processing on the chemical reactivity of lithium slag is assessed by TESCAN Integrated Mineral Analyzer (TIMA), X-ray Fluorescence (XRF), Rietveld quantitative refinement techniques. The chemical, mineral, and crystallographic phase composition of processed lithium slag specimens were assessed and compared by XRF, TIMA, and Rietveld quantitative refinement techniques, respectively. The results of thermo-mechanical processing indicated that the mineral and crystallographic transformation of Spodumene to feldspars (Anorthite, Muscovite, Albite) occurred by crystallite agglomeration. The chemical reactivity of lithium slag is gauged in terms of amorphous alumino-silicates present in feldspars and unidentified phases. Characterization of unidentified phase is evident that it majorly contains micro-nano sized alumino-silicate rich particles with similar spectral signatures to that of feldspar, some fraction of it is aggregated into other phases due to its reactivity. The concentration of the amorphous phase is proportionate with the thermo-mechanical processing energy. However, the thermo-mechanical processing energy is also optimized based on the generation of amorphous phase and reduction in particle size. Therefore, the G1C700 processed regime resulted in one of the maximum amounts of amorphous phase (52.60%). The mineral phase transformation of Spodumene to Anorthite (+10.46%) and unidentified phase (+8.24%) along with D50 value of 13.26 µm, consequently releasing 0.45 kg of carbon emissions upon thermo-mechanical processing. Hence, G1C700 lithium slag is recommended for its use as a geopolymer precursor. 2022 Journal Article http://hdl.handle.net/20.500.11937/91606 10.1016/j.conbuildmat.2022.127952 English http://purl.org/au-research/grants/arc/DP200102784 http://purl.org/au-research/grants/arc/LE140100150 http://creativecommons.org/licenses/by-nc-nd/4.0/ ELSEVIER SCI LTD fulltext
spellingShingle Science & Technology
Technology
Construction & Building Technology
Engineering, Civil
Materials Science, Multidisciplinary
Engineering
Materials Science
Lithium slag
Thermo-mechanical processing
Amorphous alumino-silicates
Tescan Integrated Mineral Analysis
Rietveld quantitative refinement
Geopolymer precursor
FLY-ASH
COMPRESSIVE STRENGTH
SPODUMENE
ACTIVATION
CONCRETE
CEMENT
Javed, Usman
Shaikh, Faiz
Sarker, Prabir Kumar
Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
title Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
title_full Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
title_fullStr Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
title_full_unstemmed Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
title_short Microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
title_sort microstructural investigation of thermo-mechanically processed lithium slag for geopolymer precursor using various characterization techniques
topic Science & Technology
Technology
Construction & Building Technology
Engineering, Civil
Materials Science, Multidisciplinary
Engineering
Materials Science
Lithium slag
Thermo-mechanical processing
Amorphous alumino-silicates
Tescan Integrated Mineral Analysis
Rietveld quantitative refinement
Geopolymer precursor
FLY-ASH
COMPRESSIVE STRENGTH
SPODUMENE
ACTIVATION
CONCRETE
CEMENT
url http://purl.org/au-research/grants/arc/DP200102784
http://purl.org/au-research/grants/arc/DP200102784
http://hdl.handle.net/20.500.11937/91606