A Study on the Improvement of the Photothermal Characteristics of the Adsorbent for Sorption-Based Atmospheric Water Harvesting Driven by Solar
Abstract
:1. Introduction
2. Experimental Section
2.1. Selection of Composite Adsorbent Materials and Mixing Ratio
2.2. Composite Adsorbent Preparation Method
2.3. Characterization
2.4. Water Sorption
2.5. Water Release
3. Results and Discussion
3.1. Structure and Morphology Characterization
3.2. Effects of Different Carbon Materials on the Adsorption Properties of Composite Adsorbents
3.3. Effects of Humidity on the Adsorption Properties of Composite Adsorbents
3.4. Effects of Temperature on the Adsorption Properties of Composite Adsorbents
3.5. Light Absorption Properties of Composite Adsorbent Desorption
3.6. Photothermal Conversion Properties of Composite Adsorbent Desorption
4. Conclusions
- (1)
- The new composite adsorbent MOF-801/CNT prepared in this paper has better adsorption and desorption properties than the existing MOF-801/G adsorbent. In terms of adsorption properties, the saturated adsorption capacity of MOF-801/CNT was 30% higher than that of MOF-801/G at the same temperature and humidity, and the humidity absorption rate was increased. In terms of desorption characteristics, under the same light intensity, MOF-801/CNT has the best light absorption performance and photothermal conversion performance, the desorption speed is 50% higher than MOF-801/G, and the water release is improved.
- (2)
- The structure and morphology of MOF-801/CNT adsorbent were clarified. The BET specific surface area was 354.77 m2/g, and the average pore size of the adsorption was up to 4.26 nm, which has excellent qualities as an adsorbent.
- (3)
- The effects of temperature and relative humidity on the adsorption properties of MOF-801/CNT were clarified, that is, the low temperature and high humidity environment are beneficial to improve the adsorption properties of the adsorbent.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
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Adsorbent | BET Surface Area/m2/g | t-Plot Micropore Volume/cm3/g | Average Adsorption Pore Size/nm |
---|---|---|---|
MOF-801 | 511.49 | 0.136 | 3.38 |
MOF-801/CNT | 354.77 | 0.0842 | 4.26 |
MOF-801/G | 270.68 | 0.0698 | 3.92 |
MOF-801/CB | 486.45 | 0.0896 | 4.26 |
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Wu, J.; Sui, Z.; Du, X.; Zhang, Y.; Ma, T. A Study on the Improvement of the Photothermal Characteristics of the Adsorbent for Sorption-Based Atmospheric Water Harvesting Driven by Solar. Coatings 2023, 13, 154. https://doi.org/10.3390/coatings13010154
Wu J, Sui Z, Du X, Zhang Y, Ma T. A Study on the Improvement of the Photothermal Characteristics of the Adsorbent for Sorption-Based Atmospheric Water Harvesting Driven by Solar. Coatings. 2023; 13(1):154. https://doi.org/10.3390/coatings13010154
Chicago/Turabian StyleWu, Jiangbo, Ziyi Sui, Xiaoze Du, Yaocong Zhang, and Tao Ma. 2023. "A Study on the Improvement of the Photothermal Characteristics of the Adsorbent for Sorption-Based Atmospheric Water Harvesting Driven by Solar" Coatings 13, no. 1: 154. https://doi.org/10.3390/coatings13010154
APA StyleWu, J., Sui, Z., Du, X., Zhang, Y., & Ma, T. (2023). A Study on the Improvement of the Photothermal Characteristics of the Adsorbent for Sorption-Based Atmospheric Water Harvesting Driven by Solar. Coatings, 13(1), 154. https://doi.org/10.3390/coatings13010154