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Extraction: Advanced Methods00:56

Extraction: Advanced Methods

450
Metal ions can be separated from one another by complexation with organic ligands–the chelating agent– to form uncharged chelates. Here, the chelating agent must contain hydrophobic groups and behave as a weak acid, losing a proton to bind with the metal. Since most organic ligands used in this process are insoluble or undergo oxidation in the aqueous phase, the chelating agent is initially added to the organic phase and extracted into the aqueous phase. The metal-ligand complex is...
450
Complexation Equilibria: Factors Influencing Stability of Complexes01:09

Complexation Equilibria: Factors Influencing Stability of Complexes

373
In complexation reactions, metal cations are the electron pair acceptors, and the ligands are the electron pair donors. The stability of the metal complexes depends primarily on the complexing ability of the central metal ion and the nature of the ligands. Generally, the complexing ability of the metal ion depends on the size and charge of the ion. As the metal ion size increases, the stability of the metal complexes decreases, provided that the valency of the metal ion and the ligands remain...
373
Ionic Strength: Effects on Chemical Equilibria01:19

Ionic Strength: Effects on Chemical Equilibria

1.5K
The addition of an inert ionic compound increases the solubility of a sparingly soluble salt. For example, adding potassium nitrate to a saturated solution of calcium sulfate significantly enhances the solubility of calcium sulfate. Le Châtelier's principle cannot predict this shift in the equilibrium. Instead, this could be explained in terms of changes in the effective concentration of the ions in solution in the presence of added inert salt.
In this solution, the primary...
1.5K
Metal-Ligand Bonds02:51

Metal-Ligand Bonds

20.8K
The hemoglobin in the blood, the chlorophyll in green plants, vitamin B-12, and the catalyst used in the manufacture of polyethylene all contain coordination compounds. Ions of the metals, especially the transition metals, are likely to form complexes.
In these complexes, transition metals form coordinate covalent bonds, a kind of Lewis acid-base interaction in which both of the electrons in the bond are contributed by a donor (Lewis base) to an electron acceptor (Lewis acid). The Lewis acid in...
20.8K
Formation of Complex Ions03:45

Formation of Complex Ions

23.7K
A type of Lewis acid-base chemistry involves the formation of a complex ion (or a coordination complex) comprising a central atom, typically a transition metal cation, surrounded by ions or molecules called ligands. These ligands can be neutral molecules like H2O or NH3, or ions such as CN− or OH−. Often, the ligands act as Lewis bases, donating a pair of electrons to the central atom. These types of Lewis acid-base reactions are examples of a broad subdiscipline called coordination...
23.7K
Electrodeposition01:08

Electrodeposition

638
Electrodeposition is a technique used to separate an analyte from interferents by electrochemical processes. Here, the analyte is a metal ion that can be deposited on an electrode immersed in the sample solution. The electrochemical setup consists of an anode and a cathode. When an electric current is applied to the setup, oxidation occurs at the anode. At the cathode, which consists of a large metal surface, metal ions undergo reduction and deposit onto the surface.
Electrodeposition can...
638

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Related Experiment Video

Updated: Jul 9, 2025

Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries
10:41

Three-electrode Coin Cell Preparation and Electrodeposition Analytics for Lithium-ion Batteries

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Probing the Effectiveness in Stabilizing Lithium Metal Anodes through Functional Additives.

Chi-Cheung Su1, Xianyang Wu1, Khalil Amine1

  • 1Chemical Sciences and Engineering Division, Argonne National Laboratory, 9700 S. Cass Avenue, Lemont, Illinois 60439, United States.

ACS Applied Materials & Interfaces
|December 7, 2023
PubMed
Summary

Cyclic fluorinated carbonates effectively stabilize lithium metal anodes, enhancing battery performance. A higher concentration of solid-electrolyte interphase (SEI) formers is recommended for improved lithium metal stabilization.

Keywords:
SEI repairelectrolyte additiveselectrolyte depletionlithium metal batterieslithium metal stabilization

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Area of Science:

  • Materials Science
  • Electrochemistry
  • Battery Technology

Background:

  • Lithium metal anodes are crucial for high-energy-density batteries but suffer from instability.
  • Electrolyte additives are commonly used to improve the stability of lithium metal anodes.
  • Conventional additive strategies face challenges due to material consumption and electrolyte depletion.

Purpose of the Study:

  • To comprehensively evaluate various electrolyte additives for stabilizing lithium metal anodes.
  • To identify the most effective additives and understand failure mechanisms in lithium batteries.
  • To propose improved strategies for lithium metal anode stabilization.

Main Methods:

  • Multi-method evaluation of electrolyte additives for lithium anode stabilization.
  • Analysis of lithium-copper (Li||Cu) cell performance.
  • Investigation of electrolyte depletion and anode resistance during battery cycling.

Main Results:

  • Cyclic fluorinated carbonates demonstrated superior performance in stabilizing lithium anodes compared to other additives.
  • Electrolyte depletion and increased lithium metal anode resistance were identified as key contributors to battery failure.
  • Conventional additive approaches showed insufficient protection due to additive consumption.

Conclusions:

  • A combination of evaluation methods is necessary for reliable assessment of lithium anode stabilization.
  • Higher concentrations (>15 wt %) of solid-electrolyte interphase (SEI) formers are recommended for effective lithium stabilization.
  • Cyclic fluorinated carbonates represent a promising class of additives for enhancing lithium battery performance and longevity.