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Sigma-Aldrich

Lithium chloride

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AnhydroBeads, −10 mesh, 99.998% trace metals basis

Synonyme(s) :

Lithium monochloride

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About This Item

Formule linéaire :
LiCl
Numéro CAS:
Poids moléculaire :
42.39
Numéro CE :
Numéro MDL:
Code UNSPSC :
12352302
ID de substance PubChem :
Nomenclature NACRES :
NA.23

Gamme de produits

AnhydroBeads

Niveau de qualité

Pureté

99.998% trace metals basis

Forme

beads

Caractéristiques du produit alternatif plus écologique

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Impuretés

≤25.0 ppm Trace Metal Analysis

Taille des particules

−10 mesh

Pf

605 °C (lit.)

Solubilité

H2O: soluble

Autre catégorie plus écologique

Chaîne SMILES 

[Li+].[Cl-]

InChI

1S/ClH.Li/h1H;/q;+1/p-1

Clé InChI

KWGKDLIKAYFUFQ-UHFFFAOYSA-M

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Description générale

We are committed to bringing you Greener Alternative Products, which adhere to one or more of The 12 Principles of Greener Chemistry. This product has been enhanced for energy efficiency. Click here for more information.

Application

Lithium chloride can be used as:
  • A molten salt electrolyte in Li-based liquid metal batteries. LiCl facilitates the transport of lithium ions between the electrodes during the battery′s charge and discharge cycles. LiCl, along with KCl, contributes to the ionic conductivity and stability of the molten salt electrolyte.
  • A precursor material for the development of fluorine-substituted lithium chloride solid electrolytes for high-voltage solid-state lithium-ion batteries.
  • A salt additive in the formulation of a gel electrolyte for quasi-solid dye-sensitized solar cells. LiCl enhances the ionic conductivity of the gel electrolyte, facilitating the movement of charges within the solar cell
  • An additive in the development of a composite electron transport layer for N-I-P type monolithic perovskite/silicon tandem solar cells. It is added to the tin oxide (SnO2) precursor solution to passivate defects within the SnO2 layer and enhance the electron injection driving force at the interface between the electron transfer layer (ETL) and perovskite.
  • Molten salts reactors as an coolant

Informations légales

AnhydroBeads is a trademark of Sigma-Aldrich Co. LLC

À utiliser avec

Pictogrammes

Exclamation mark

Mention d'avertissement

Warning

Mentions de danger

Classification des risques

Acute Tox. 4 Oral - Eye Irrit. 2 - Skin Irrit. 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

dust mask type N95 (US), Eyeshields, Gloves


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Consulter la Bibliothèque de documents

Xiaoqi Sun et al.
Advanced science (Weinheim, Baden-Wurttemberg, Germany), 3(8), 1600044-1600044 (2016-11-08)
The major advantage of Mg batteries relies on their promise of employing an Mg metal negative electrode, which offers much higher energy density compared to graphitic carbon. However, the strong coulombic interaction of Mg
Tang, J. et al.
Tetrahedron, 55, 1893-1893 (1999)
Daniel I Perez et al.
Journal of medicinal chemistry, 54(12), 4042-4056 (2011-04-20)
Development of kinase-targeted therapies for central nervous system (CNS) diseases is a great challenge. Glycogen synthase kinase 3 (GSK-3) offers a great potential for severe CNS unmet diseases, being one of the inhibitors on clinical trials for different tauopathies. Following
Alessandro Di Maio et al.
EvoDevo, 6, 17-17 (2015-07-15)
Wnt signaling is one of the earliest and most highly conserved regulatory pathways for the establishment of the body axes during regeneration and early development. In regeneration, body axes determination occurs independently of tissue rearrangement and early developmental cues. Modulation
A M Petrosyan et al.
Spectrochimica acta. Part A, Molecular and biomolecular spectroscopy, 105, 623-625 (2013-02-07)
We argue that the recently reported crystals "L-threonine formate" as well as "L-alanine lithium chloride" and "bis L-alanine lithium chloride" actually are the well-known crystals L-threonine and L-alanine, respectively.

Articles

Research and development of solid-state lithium fast-ion conductors is crucial because they can be potentially used as solid electrolytes in all-solid-state batteries, which may solve the safety and energy-density related issues of conventional lithium-ion batteries that use liquid (farmable organic) electrolytes.

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