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Key Documents

205524

Sigma-Aldrich

Lithium metaborate

99.9% trace metals basis

Synonyme(s) :

Boric acid lithium salt

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About This Item

Formule linéaire :
LiBO2
Numéro CAS:
Poids moléculaire :
49.75
Numéro CE :
Numéro MDL:
Code UNSPSC :
12352302
ID de substance PubChem :
Nomenclature NACRES :
NA.23

Niveau de qualité

Pureté

99.9% trace metals basis

Forme

powder

Technique(s)

FTIR: suitable

Impuretés

≤1500 ppm Trace Metal Analysis

Pf

845 °C (lit.)

Chaîne SMILES 

[Li+].[O-]B=O

InChI

1S/BO2.Li/c2-1-3;/q-1;+1

Clé InChI

HZRMTWQRDMYLNW-UHFFFAOYSA-N

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Description générale

Lithium metaborate (LMB) isa good ion conductor and wide bandgap insulator commonly used as a flux orsolvent to identify and characterize uranium and thorium-containing resistantminerals. LMB is also used as a chemical modifier during thegeneration of new compounds from clays and refractory materials. Because of itshigh optical damage thresholds, mechanical durability, and deep-ultraviolettransparency, it is a suitable material for non-linear optics.

Application

Lithium metaborate fusion can be used for the preparation of geological materials. The fusion of rock samples with LMB results in the formation of glasses that are easily soluble in dilute acids. This method allows the preparation of whole-rock solutions for rapid analysis.

LMB melt can be used in the synthesis of low-density γ-Al2O3 from high-density α-Al2O3 under high pressure.

LMB can be employed as a protective coating layer for lithium-ion battery cathode materials due to its chemical inertness in organic electrolytes.

Pictogrammes

Health hazardCorrosionExclamation mark

Mention d'avertissement

Danger

Mentions de danger

Classification des risques

Acute Tox. 4 Oral - Eye Dam. 1 - Repr. 2

Code de la classe de stockage

13 - Non Combustible Solids

Classe de danger pour l'eau (WGK)

WGK 1

Point d'éclair (°F)

Not applicable

Point d'éclair (°C)

Not applicable

Équipement de protection individuelle

Eyeshields, Gloves, type N95 (US)


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Consulter la Bibliothèque de documents

Xirui Wang et al.
Scientific reports, 10(1), 21518-21518 (2020-12-11)
An electrosynthesis is presented to transform CO2 into an unusual nano and micron dimensioned morphology of carbon, termed Carbon Nano-Scaffold (CNS) with wide a range of high surface area graphene potential usages including batteries, supercapacitors, compression devices, electromagnetic wave shielding
Thomas Hermanns et al.
The Journal of urology, 185(6), 2241-2247 (2011-04-19)
Technical modifications of the 120 W lithium-triborate laser have been implemented to increase power output, and prevent laser fiber degradation and loss of power output during laser vaporization of the prostate. However, visible alterations at the fiber tip and the
J Graetz et al.
Nanotechnology, 20(20), 204007-204007 (2009-05-08)
The local bonding and atomic environments in the Ni-catalyzed destabilized system LiBH4/MgH2 and the quaternary borohydride-amide phase Li3BN2H8, were studied by x-ray absorption spectroscopy. In both cases the Ni catalyst was introduced as NiCl2 and a qualitative comparison of the
M Ceretti et al.
Radiation protection dosimetry, 144(1-4), 262-265 (2011-02-08)
This work summarises the results of a series of experiences made on Panasonic UD-802AS, a multi-element dosemeter that is currently used in Caorso Nuclear Power Plant for personnel external monitoring. Two main topics have been considered: energy response and the
Oliver Reich
Current opinion in urology, 21(1), 27-30 (2010-11-04)
To report on the latest data in the recent literature regarding the so-called 'Greenlight laser vaporization of the prostate'. Specifically to comment on the evolution of the 80-W KTP (potassium-titanyl-phosphate) system to the more recent 120-W LBO (lithium triborate) system.

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