This document defines concepts or unification of concepts for lithium minerals, lithium metals, lithium compounds, lithium alloys, and lithium scrap recycling, including concepts related to materials characteristics, physical characteristics, and chemical characteristics. This document can be used as a reference for concepts and unified concepts in lithium minerals, compounds, alloys and scrap recycling production, application, inspection, circulation, trading, scientific research and education purposes.

  • Standard
    17 pages
    English language
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  • Standard
    17 pages
    French language
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This document specifies potentiometric titration methods for the determination of lithium carbonate and lithium hydroxides content in lithium composite oxides for lithium-ion batteries (LIBs). The method is applicable to lithium composite oxides for LIBs with a mass fraction of lithium carbonate and lithium hydroxides in the range from 0.001% to 2.500%.

  • Draft
    10 pages
    English language
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  • Draft
    10 pages
    English language
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This International Standard specifies methods for the chemical analysis of lithium nickel manganese cobalt oxide (NMC) powders used as the raw material for cathode materials. This document stipulates the determination methods of nickel, manganese, cobalt, aluminium, barium, calcium, copper, iron, lead, magnesium, molybdenum, phosphorus, sodium, strontium, titanium, zinc, zirconium, lithium hydroxide (LiOH) and lithium carbonate (Li2CO3) contents in NMC powders. NMC powders are decomposed by an acid decomposition method. The nickel, manganese, cobalt, aluminium, barium, calcium, copper, iron, lead, magnesium, molybdenum, phosphorus, sodium, strontium, titanium, zinc and zirconium contents in the test solution are determined by an inductively coupled plasma—optical emission spectrometry (ICP-OES). Li2CO3 and LiOH are determined by using an acid-base titration.

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    15 pages
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  • Draft
    15 pages
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This document describes an analytical procedure for the determination of trace elements in Li composite oxides for Li-ion battery (LiB). These are in particular the elements: aluminium (Al), barium (Ba), calcium (Ca), copper (Cu), iron (Fe), lead (Pb), magnesium (Mg), molybdenum (Mo), phosphorus (P), sodium (Na), strontium (Sr), titanium (Ti), zinc (Zn), zirconium (Zr) in Li composite oxides. The determination is performed by optical emission spectrometry with inductively coupled plasma (ICP-OES).

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    18 pages
    English language
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  • Draft
    18 pages
    English language
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This document specifies a method for the determination of metal ions content of lithium hexafluorophosphate (LiPF6) by inductively coupled plasma optical emission spectrometry (ICP-OES). The document is applicable to the determination of the content of aluminium (Al), calcium (Ca), cadmium (Cd), chromium (Cr), copper (Cu), iron (Fe), potassium(K), magnesium (Mg), sodium (Na), nickel (Ni) palladium(Pd) and zinc (Zn) in LiPF6. This method is suitable for the laboratory operation of LiPF6 producer, final user and independent test institute.

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    15 pages
    English language
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  • Draft
    15 pages
    English language
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Frequently Asked Questions

ISO/TC 333 is a Technical Committee within the International Organization for Standardization (ISO). It is named "Lithium" and is responsible for: Standardization in the field of lithium mining, concentration, extraction, separation and conversion to useful lithium compounds/materials (including oxides, salts, metals, master alloys, lithium-ion battery materials, etc.) The work program includes terminology, technical conditions of delivery to overcome transport difficulties, unified testing and analysis methods to improve the general quality of lithium products. Excluded: Battery Note: Battery is a component and not a material, which can be directly used in electric vehicles, digital cameras, electric motorcycles, etc This committee has published 5 standards.

ISO/TC 333 develops ISO standards in the area of Information technology. The scope of work includes: Standardization in the field of lithium mining, concentration, extraction, separation and conversion to useful lithium compounds/materials (including oxides, salts, metals, master alloys, lithium-ion battery materials, etc.) The work program includes terminology, technical conditions of delivery to overcome transport difficulties, unified testing and analysis methods to improve the general quality of lithium products. Excluded: Battery Note: Battery is a component and not a material, which can be directly used in electric vehicles, digital cameras, electric motorcycles, etc Currently, there are 5 published standards from this technical committee.

The International Organization for Standardization (ISO) is an independent, non-governmental international organization that develops and publishes international standards. Founded in 1947 and headquartered in Geneva, Switzerland, ISO brings together experts from 170+ member countries to share knowledge and develop voluntary, consensus-based standards that support innovation and provide solutions to global challenges.

A Technical Committee (TC) in ISO is a group of experts responsible for developing international standards in a specific technical area. TCs are composed of national member body delegates and work through consensus to create standards that meet global industry needs. Each TC may have subcommittees (SCs) and working groups (WGs) for specialized topics.