MIL-160 as an Adsorbent for Atmospheric Water Harvesting

被引:22
|
作者
Solovyeva, Marina [1 ]
Krivosheeva, Irina [1 ,2 ]
Gordeeva, Larisa [1 ]
Aristov, Yuri [1 ]
机构
[1] Boreskov Inst Catalysis, Ac Lavrentiev Av 5, Novosiborsk 630055, Russia
[2] Novosibirsk State Univ, Dept Nat Sci, Novosibirsk 630090, Russia
基金
俄罗斯基础研究基金会;
关键词
adsorptive water harvesting from the atmosphere; metal-organic frameworks; MIL-160; water vapor adsorption; specific water productivity; specific energy consumption; METAL-ORGANIC FRAMEWORKS; CLIMATE-CHANGE; AIR; EXTRACTION; ADSORPTION; RESOURCES; SORBENTS; DESIGN; DEVICE; HOT;
D O I
10.3390/en14123586
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
Nowadays, the rapidly growing population, climate change, and environment pollution put heavy pressure on fresh water resources. The atmosphere is the immense worldwide and available water source. The Adsorptive Water Harvesting from the Atmosphere (AWHA) method is considered a promising alternative to desalination technologies for remote arid regions. The development of novel adsorbents with advanced water-adsorption properties is a prerequisite for practical realization of this method. Metal-organic frameworks (MOFs) are a novel class of porous crystalline solids that bring a great potential for AWHA due to their extremely high specific surface area, porosity, and tailored adsorption properties. This work addresses MIL-160 as a water adsorbent for AWHA. The water-adsorption equilibrium of MIL-160 was studied by volumetric method, the isosteric heat of adsorption was calculated, and finally, the potential of MIL-160 for AWHA was evaluated for climatic conditions of the deserts of Saudi Arabia, Mongolia, the Sahara, Atacama, and Mojave as reference arid regions. MIL-160 was shown to ensure a maximum specific water productivity of 0.31-0.33 g(H2O)/g(ads) per cycle. High fractions of water extracted (0.90-0.98) and collected (0.48-0.97) could be achieved at a regeneration temperature of 80 degrees C with natural cooling of the condenser by ambient air. The specific energy consumption for water production varied from 3.5 to 6.8 kJ/g, which is acceptable if solar heat is used to drive the desorption. The AWHA method employing MIL-160 is a promising way to achieve a fresh water supply in remote arid areas.
引用
收藏
页数:15
相关论文
共 50 条
  • [11] Three-dimensional conical adsorbent design for enhancing atmospheric water harvesting performance
    Deng, Fangfang
    Wang, Chenxi
    Chen, Zhihui
    Wang, Ruzhu
    CHINESE SCIENCE BULLETIN-CHINESE, 2022, 67 (09): : 906 - 912
  • [12] Scale-up synthesis and shaping of MIL-160(Al) applicable for efficient CO2 adsorption and separation
    Wang, Mengkun
    Guo, Haijun
    Wang, Can
    Xiong, Lian
    Chen, Xuefang
    Peng, Fen
    Yao, Shimiao
    Li, Hailong
    Zhang, Hairong
    Chen, Xinde
    SEPARATION AND PURIFICATION TECHNOLOGY, 2025, 360
  • [13] Biogas upgrading using shaped MOF MIL-160(Al) by pressure swing adsorption process: Experimental and dynamic modelling assessment
    Karimi, Mohsen
    Siqueira, Rafael M.
    Rodrigues, Alirio E.
    Nouar, Farid
    Silva, Jose A. C.
    Serre, Christian
    Ferreira, Alexandre
    SEPARATION AND PURIFICATION TECHNOLOGY, 2024, 344
  • [14] Water vapor harvesting by a (P)TSA process with MIL-125(Ti)_NH2 as adsorbent
    Silva, Marcia P.
    Ribeiro, Ana M.
    Silva, Claudia G.
    Narin, Guler
    Nogueira, Idelfonso B. R.
    Lee, U-Hwang
    Faria, Joaquim L.
    Loureiro, Jose M.
    Chang, Jong-San
    Rodrigues, Alirio E.
    Ferreira, Alexandre
    SEPARATION AND PURIFICATION TECHNOLOGY, 2020, 237
  • [15] Rietveld Refinement of MIL-160 and Its Structural Flexibility Upon H2O and N2 Adsorption
    Wahiduzzaman, Mohammad
    Lenzen, Dirk
    Maurin, Guillaume
    Stock, Norbert
    Wharmby, Michael T.
    EUROPEAN JOURNAL OF INORGANIC CHEMISTRY, 2018, (32) : 3626 - 3632
  • [16] Salt Confined in MIL-101(Cr)-Tailoring the Composite Sorbents for Efficient Atmospheric Water Harvesting
    Solovyeva, Marina V.
    Krivosheeva, Irina V.
    Gordeeva, Larisa G.
    Khudozhitkov, Alexander E.
    Kolokolov, Daniil I.
    Stepanov, Alexander G.
    Ludwig, Ralf
    CHEMSUSCHEM, 2023, 16 (18)
  • [17] Efficient atmospheric water harvesting
    Freestone, Nigel P.
    CHEMISTRY & INDUSTRY, 2022, 86 (05) : 43 - 43
  • [18] A Study on the Improvement of the Photothermal Characteristics of the Adsorbent for Sorption-Based Atmospheric Water Harvesting Driven by Solar
    Wu, Jiangbo
    Sui, Ziyi
    Du, Xiaoze
    Zhang, Yaocong
    Ma, Tao
    COATINGS, 2023, 13 (01)
  • [19] Bimetallic MOF-Derived Solar-Triggered Monolithic Adsorbent for Enhanced Atmospheric Water Harvesting
    Luo, Fan
    Liang, Xianghui
    Chen, Weicheng
    Wang, Shuangfeng
    Gao, Xuenong
    Zhang, Zhengguo
    Fang, Yutang
    SMALL, 2023, 19 (48)
  • [20] High-Flux High-Selectivity Metal-Organic Framework MIL-160 Membrane for Xylene Isomer Separation by Pervaporation
    Wu, Xiaocao
    Wei, Wan
    Jiang, Jianwen
    Caro, Juergen
    Huang, Aisheng
    ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (47) : 15354 - 15358