Related Experiment Video
Updated: Jan 28, 2026

Single-Cell Calcium Imaging for Studying the Activation of Calcium Ion Channels
Published on: December 13, 2024
Unraveling Calcium Ion Effects on Water Adsorption of Acid-Treated Lignite via Experiments and DFT Calculation
Yinmin Song1,2, Xinkang Jiang3,2, Yingyue Teng3,2
1Analysis Testing and Laboratory Management Center, Inner Mongolia University of Technology, Hohhot, Inner Mongolia 010051, China.
Abstract:
This study investigated the mechanism of Ca2+ incorporation on the water adsorption capacity of acid-treated lignite. The microstructure of samples was characterized using FTIR and XRD, while water adsorption was analyzed via 1H NMR and density functional theory (DFT) calculations. The independent gradient model (IGM) was employed to visualize noncovalent interactions between lignite and water. FTIR analysis showed that Ca2+ exchanges with carboxyl groups (-COOH) and alters the aromatic structure of lignite but minimally affects hydroxyl (-OH), aliphatic C-H, and substituted aromatic vibrations. Notably, Ca2+ exhibits dual effects on graphitization: it enhances microcrystalline order at 0.05Ca (d 002 = 0.360 ± 0.002 nm) while disrupting it at 0.2Ca (d 002 = 0.363 ± 0.002 nm). 1H NMR demonstrated that Ca2+ enhances bound water adsorption (T 2 < 10 ms) at 43% RH via Ca2+-carboxyl complexes and [Ca-(H2O)8]2+ clusters, converting weakly to strongly bound states. DFT and IGM analyses further identified hydrogen bonding as the dominant interaction, with Ca2+ creating new adsorption sites despite the reduction of single-water binding energy. This study clarifies the role of Ca2+ in modifying the microstructure and surface hydrophilicity of acid-treated lignite, providing insights into optimizing lignite utilization and increasing its industrial value.
More Related Videos
Related Concept Videos
Ions as Acids and Bases
Salts are ionic compounds composed of cations and anions, either of which may be capable of undergoing an acid or base ionization reaction with water. Aqueous salt solutions, therefore, may be acidic, basic, or neutral, depending on the relative acid-base strengths of the salt’s constituent ions. For example, dissolving the ammonium chloride in water results in its dissociation, as described by the equation:
Titration Calculations: Weak Acid - Strong Base
For the titration of 25.00 mL of 0.100 M CH3CO2H with 0.100 M NaOH, the reaction can be represented as:
Titration Calculations: Strong Acid - Strong Base
A titration is carried out for 25.00 mL of 0.100 M HCl (strong acid) with 0.100 M of a strong base NaOH. The pH at different volumes of added base solution can be calculated as follows:
(a) Titrant volume = 0 mL. The solution pH is due to the acid ionization of HCl. Because this is a strong acid, the ionization is complete and the hydronium ion molarity is 0.100 M. The pH of the solution is then:
Water: A Bronsted-Lowry Acid and Base
Calculating pH Changes in a Buffer Solution
Relation of DFT to z-Transform
To understand how the DFT works, it's helpful to consider the z-transform, which is a method for representing discrete sequences in the complex frequency domain. The z-transform involves summing the...

