Results 191 to 200 of about 657,314 (280)

Impact of structural coherence and disorder on the ionic transport and lattice dynamics in Li<sup>+</sup>-conducting argyrodites.

open access: yesJ Mater Chem A Mater
Böger T   +9 more
europepmc   +1 more source

Higher hydrates of lithium chloride, lithium bromide and lithium iodide

Acta Crystallographica Section C, Structural Chemistry, 2018
For lithium halides, LiX (X = Cl, Br and I), hydrates with a water content of 1, 2, 3 and 5 moles of water per formula unit are known as phases in aqueous solid–liquid equilibria. The crystal structures of the monohydrates of LiCl and LiBr are known, but no crystal structures have been reported so far for the higher hydrates, apart from LiI·3H2O.
Horst Schmidt   +2 more
exaly   +4 more sources

Multi-objective optimization of double effect series and parallel flow water–lithium chloride and water–lithium bromide absorption refrigeration systems

Energy Conversion and Management, 2019
In this study, multi-objective optimization of the series and parallel flow type double effect absorption refrigeration systems is presented. Genetic algorithm is used to find the optimal solutions and the Pareto-optimal fronts.
T K Gogoi
exaly   +2 more sources

Measurement of solubility and density of water + lithium bromide + lithium chloride and water + lithium bromide + sodium formate systems

International Journal of Refrigeration, 2015
Abstract Solubility of aqueous solutions containing lithium bromide + lithium chloride and lithium bromide + sodium formate were measured (LiBr/NaHCO 2  = 2 and LiBr/LiCl = 2 by mass ratio) at different temperatures. Visual polythermal method was used in the temperature range of (283.15–340.15) K and mass fraction range of (0.4–0.8).
, Mahsa Arabi
exaly   +2 more sources

Solubility of the water—lithium-bromide—zinc-bromide combination

International Journal of Refrigeration, 1993
Abstract A major limitation of the lithium-bromide-water system in chilling systems is its low salt solubility, which prevents the strong solution from the generator from being cooled to nearer the absorber temperature without salt crystallization.
exaly   +2 more sources

Lithium Bromide-Induced Organic-Rich Cathode/Electrolyte Interphase for High-Voltage and Flame-Retardant All-Solid-State Lithium Batteries.

ACS Applied Materials and Interfaces, 2022
Poly(ethylene oxide) (PEO)-based solid electrolyte suffers from limited anodic stability and an intrinsic flammable issue, hindering the achievement of high energy density and safe all-solid-state lithium batteries. Herein, we surprisingly found out that
Hang-Yu Zhou   +11 more
semanticscholar   +1 more source

Tailorable cellulose II nanocrystals (CNC II) prepared in mildly acidic lithium bromide trihydrate (MALBTH)

Green Chemistry, 2021
Cellulose II nanocrystals were prepared from bleached kraft pulp via simultaneous hydrolysis of disordered cellulose and polymorph transformation in mildly acidic lithium bromide trihydrate followed by ammonium persulfate oxidation.
Ning Li   +4 more
semanticscholar   +1 more source

Performance analysis of a cascade lithium bromide absorption refrigeration/dehumidification process driven by low-grade waste heat for hot summer and cold winter climate area in China

, 2021
Recovery of low-grade waste heat has great potential to reduce energy consumption around the world. In this paper, a novel cascade lithium bromide absorption refrigeration/dehumidification system is developed to recover low-grade waste heat with ...
Aixiang Xu   +7 more
semanticscholar   +1 more source

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