4.6 Article

Synergetic and persistent harvesting of electricity and potable water from ambient moisture with biohybrid fibrils

Journal

JOURNAL OF MATERIALS CHEMISTRY A
Volume 10, Issue 15, Pages 8356-8363

Publisher

ROYAL SOC CHEMISTRY
DOI: 10.1039/d1ta10865d

Keywords

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Funding

  1. National Natural Science Foundation of China [22075307, 21474125]
  2. China Scholarship Council [201706330109]
  3. Shandong Taishan Youth Scholoar Program
  4. Shandong Provincial Natural Science Foundation [ZR2021YQ40, ZR2020ZD33, ZR2020KE025]
  5. QIBEBT, & Dalian National Laboratory for Clean Energy (DNL), CAS [QIBEBT I201916]
  6. Shandong Energy Institute [SEI I202131, SEI I202143]

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By synthesizing metal-organic frameworks on a nanofiber template, biohybrid fibrils with superior properties were produced and engineered into flexible membranes. The membranes can synchronize water and electricity harvesting by balancing moisture adsorption and solar-driven water desorption.
Harnessing ambient moisture for energy and water is an attractive strategy to address the decentralized demand for sustainable energy and uncontaminated water supplies, especially in arid and hydropenic regions. Although discontinuous harvesting of water and electricity has been endeavored frequently on various nanomaterials, it remains challenging to integrate these two distinct processes into one system for synergetic and persistent harvesting. Herein, by in situ synthesizing solar-thermal and conductive metal-organic-frameworks on a template of sulfonate cellulose nanofibrils, biohybrid fibrils with superior moisture-adsorption, photo-thermal and water-desorption properties were produced and engineered into flexible membranes. When exposing one end of the membrane to moisture and the other to solar irradiation, rapid moisture adsorption could be balanced with solar-driven water desorption to synchronize water and electricity harvesting. A sustained open-circuit voltage of similar to 0.65 V is obtained together with persistent water production of up to similar to 0.8 g g(-1) h(-1) (at 25 degrees C, 99% RH). Thus, this biohybrid strategy may provide a sustainable platform for synergetic and persistent harvesting of electric power and potable water from atmospheric moisture and may be applicable in the decentralized supply of arid and hydropenic regions.

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