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Related Concept Videos

Ion Exchange01:17

Ion Exchange

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Ion exchange chromatography separates charged molecules from a solution by reversibly exchanging them with mobile, or 'active', ions associated with the oppositely charged stationary phase. This method can be used to separate ions, soften and deionize water, and purify solutions. The polymers comprising the ion-exchange column are high-molecular-weight and chemically stable polymers, crosslinked to be porous and essentially insoluble. They are also functionalized with either acidic or...
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Electrolyte and Nonelectrolyte Solutions02:21

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Substances that undergo either a physical or a chemical change in solution to yield ions that can conduct electricity are called electrolytes. If a substance yields ions in solution, that is, if the compound undergoes 100% dissociation, then the substance is a strong electrolyte. Complete dissociation is indicated by a single forward arrow. For example, water-soluble ionic compounds like sodium chloride dissociate into sodium cations and chloride anions in aqueous solution.
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Capillary Electrophoresis: Applications01:30

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Capillary electrophoretic separations offer various modes, each with unique applications. These modes include capillary zone electrophoresis, capillary gel electrophoresis, capillary array electrophoresis, capillary isoelectric focusing, capillary isotachophoresis, micellar electrokinetic chromatography, and capillary electrochromatography.
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Supercritical Fluid Chromatography01:18

Supercritical Fluid Chromatography

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Supercritical fluid chromatography (SFC) provides a beneficial substitute for gas chromatography (GC) and liquid chromatography (LC) for certain samples because it merges the top attributes of both techniques. SFC allows the separation and analysis of compounds that GC or LC does not easily manage. These compounds are traditionally nonvolatile or thermally unstable, making GC unsuitable and lacking functional groups required for HPLC analysis.
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Ionic Strength: Effects on Chemical Equilibria01:19

Ionic Strength: Effects on Chemical Equilibria

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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.
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Solvating Effects02:12

Solvating Effects

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An understanding of the solvating effect helps rationalize the relation between solvation and acidity of the compound. In addition, this also explains the relative stability of conjugate bases for compounds with different pKa values. This lesson details, in-depth, the principle of solvating effects. The strength of an acid and the stability of its corresponding conjugate base are determined using pKa values. This observed relationship is a consequence of solvation, which is the interaction...
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Gas Evolution in Activated-Carbon-Based Supercapacitors with Protic Deep Eutectic Solvent as Electrolyte.

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Amide-based deep eutectic solvents containing LiFSI and NaFSI salts as superionic electrolytes for supercapacitor

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Area of Science:

  • Electrochemistry
  • Materials Science
  • Green Chemistry

Background:

  • Electrochemical double-layer capacitors (EDLCs) are crucial energy storage devices.
  • Developing stable and high-performance electrolytes is key to advancing EDLC technology.
  • Deep eutectic solvents (DESs) are emerging as promising, environmentally friendly electrolyte alternatives.

Purpose of the Study:

  • To synthesize and characterize novel DES-based electrolytes for AC-EDLCs.
  • To evaluate the electrochemical properties and performance of these DES electrolytes.
  • To explore the potential of DESs as sustainable electrolytes for supercapacitors.

Main Methods:

  • Formulation of DES electrolytes using lithium/sodium bis(fluorosulfonyl)imide and N-methylacetamide/formamide.
  • Characterization of DES properties: electrochemical window, thermal stability, ionic conductivity, and viscosity.
  • Electrochemical performance evaluation of AC-EDLCs using cyclic voltammetry, electrochemical impedance spectroscopy, and galvanostatic charge/discharge.

Main Results:

  • DES electrolytes achieved a large electrochemical window (> 2.5 V) and good thermal stability (~150 °C).
  • Ionic conductivity ranged from 3-4 mS cm⁻¹, with moderate viscosity (11.3 mPa s).
  • AC-EDLCs demonstrated a capacitance of 140 F g⁻¹ with 8% capacity retention over 200 hours.

Conclusions:

  • The developed DESs exhibit favorable physicochemical and electrochemical properties for supercapacitor applications.
  • These DESs show a superionic character and higher ionicity compared to standard organic electrolytes.
  • The study highlights DESs as a promising green-alternative electrolyte for next-generation supercapacitors.