Effect of Li, Na and K Modification of Alumina on its Physical and Chemical Properties and Water Adsorption Ability
Abstract
:1. Introduction
2. Materials and Methods
2.1. Synthesis of Adsorbents
2.2. Methods
3. Results
3.1. Material Characterization
3.2. Effect of Flow Rate on Water Vapour Adsorption
3.3. Dynamics of Water Adsorption Study
4. Conclusion
- (1)
- According to the XRD results, modification did not influence the change of the phase composition—all of the samples of the aluminium oxide material represented a mixture of low-temperature modifications of aluminium oxide—(γ + η + χ)-Al2O3. The presence of fine mesopores with an average diameter in the range of 4-15 nm was typical of all the obtained samples. As a result of the Al2O3 modification with alkaline metals (Li, Na, K), the values of the specific surface decrease from 290 m2/g and the average pore size increases.
- (2)
- Al2O3 modification led to an increase in the equilibrium adsorption capacity of the materials mass unit in relation to water vapours. The Na and K cations exerted the most substantial influence.
- (3)
- The maximum value of the equilibrium adsorption capacity was observed for the modified samples with the specific surface of Ssp = 240 ± 24 m2/g. This value Ssp is provided by modification of the initial material with 1.2 wt % of sodium or with 2.6 wt % of potassium, which approximately corresponds to a similar mole concentration that is equal to 5.2⋅10−4 and 6.8⋅10−4 moles of the metal per gram of the initial Al2O3, respectively. Such content of Na and K cations is approximately (0.13–0.17) ML of the monolayer (ML) coating of active sites on the surface of a porous material and allows for increasing the sample capacity by ~40%.
Author Contributions
Funding
Conflicts of Interest
References
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Sample | Composition, Mass % | Ssp, m2/g | Total Pore Volume, cm3/g | Average Pore Diameter, nm |
---|---|---|---|---|
Al2O3 | 0.1 Na | 290 | 0.34 | 4.7 |
Al2O3 + 1.3Li | 1.3 Li | 173 | 0.39 | 9.1 |
Al2O3 + 2.0Li | 2.0 Li | 127 | 0.39 | 12.3 |
Al2O3 + 4.1Li | 4.1 Li | 79 | 0.29 | 14.7 |
Al2O3 + 1.2Na | 1.2 Na | 250 | 0.40 | 6.5 |
Al2O3 + 2.4Na | 2.4 Na | 184 | 0.32 | 7.0 |
Al2O3 + 4.0Na | 4.0 Na | 98 | 0.19 | 7.7 |
Al2O3 + 1.6K | 1.6 K | 259 | 0.45 | 6.9 |
Al2O3 + 2.0K | 2.0 K | 247 | 0.38 | 6.3 |
Al2O3 + 4.5K | 4.5 K | 222 | 0.37 | 6.7 |
Al2O3 + 5.4K | 5.4 K | 169 | 0.31 | 7.7 |
№ of Sample | a*, gH2O/gads | β, min−1 | R0 * |
---|---|---|---|
Al2O3 | 0.25 | 0.0240 | 0.99 |
1.3Li | 0.26 | 0.0158 | 0.91 |
2.0Li | 0.27 | 0.0123 | 0.92 |
4.1Li | 0.20 | 0.0142 | 0.89 |
1.2Na | 0.35 | 0.0236 | 0.95 |
2.4Na | 0.32 | 0.0216 | 0.95 |
4.0Na | 0.20 | 0.0185 | 0.96 |
1.6K | 0.34 | 0.0225 | 0.98 |
2.0K | 0.33 | 0.0193 | 0.96 |
4.5K | 0.33 | 0.0185 | 0.98 |
5.4K | 0.31 | 0.0176 | 0.93 |
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Reshetnikov, S.; Kurzina, I.; Livanova, A.; Meshcheryakov, E.; Isupova, L. Effect of Li, Na and K Modification of Alumina on its Physical and Chemical Properties and Water Adsorption Ability. Materials 2019, 12, 4212. https://doi.org/10.3390/ma12244212
Reshetnikov S, Kurzina I, Livanova A, Meshcheryakov E, Isupova L. Effect of Li, Na and K Modification of Alumina on its Physical and Chemical Properties and Water Adsorption Ability. Materials. 2019; 12(24):4212. https://doi.org/10.3390/ma12244212
Chicago/Turabian StyleReshetnikov, Sergey, Irina Kurzina, Alesia Livanova, Eugene Meshcheryakov, and Lyubov Isupova. 2019. "Effect of Li, Na and K Modification of Alumina on its Physical and Chemical Properties and Water Adsorption Ability" Materials 12, no. 24: 4212. https://doi.org/10.3390/ma12244212
APA StyleReshetnikov, S., Kurzina, I., Livanova, A., Meshcheryakov, E., & Isupova, L. (2019). Effect of Li, Na and K Modification of Alumina on its Physical and Chemical Properties and Water Adsorption Ability. Materials, 12(24), 4212. https://doi.org/10.3390/ma12244212