TY - JOUR
T1 - Freshwater Harvester with Ultra-High Yield by Super-Hygroscopic Composite Under Extremely Low Humidity Environment
AU - Luo, Qiang
AU - Zhang, Tiance
AU - Chen, Mingshuo
AU - Gao, Chang
AU - Guo, Li
AU - Zhou, Maolin
AU - Zhu, Lingmei
AU - Wei, Huijie
AU - Khan, Assadullah
AU - Hou, Yongping
AU - Zheng, Yongmei
N1 - Publisher Copyright:
© 2025 Wiley-VCH GmbH.
PY - 2025/7/24
Y1 - 2025/7/24
N2 - Atmospheric water harvesting (AWH) is a promising strategy for freshwater production to alleviate water scarcity, but it remains challenging due to its limited daily water production volume at extremely low relative humidity (RH). Herein, a super-hygroscopic composite (CHG) is reported that is fabricated by using chitosan (CS), hyaluronic acid (HA), metal–organic frameworks (MOF-303), graphene oxide (GO), and calcium chloride (CaCl2). In this strategy, the CS-HA serves as a cation/anion substrate to form stable hydrogel structure with CaCl2 salt. MOF-303 and GO exhibit a significantly enhanced water harvesting capacity at low RH (≤30% RH). CaCl2 additionally improves structural stability, firmly locking the MOF-303 and GO particles into the entangled chain structure of the micro-gel network. The hydrophilicity and porosity of CS-HA frameworks promote diffusion and storage of water molecules, realizing the effective atmospheric moisture capture of the CHG. The CHG realizes a high-water uptake of ≈0.78 g g−1 at 20% RH, and after absorbing water to saturation at 45% RH, it achieves ≈0.93 g g−1 in 120 min under 0.50-sun illumination. Especially, CHG on a large scale displays a high sorption-desorption efficiency, which achieves an excellent freshwater yield of ≈9.95 L kg−1 day−1 under ≈25% RH and temperature of ≈30 °C via the self-made device. This work offers new insights into the design of high-performance materials for AWH applications in water-lacking situations or arid regions.
AB - Atmospheric water harvesting (AWH) is a promising strategy for freshwater production to alleviate water scarcity, but it remains challenging due to its limited daily water production volume at extremely low relative humidity (RH). Herein, a super-hygroscopic composite (CHG) is reported that is fabricated by using chitosan (CS), hyaluronic acid (HA), metal–organic frameworks (MOF-303), graphene oxide (GO), and calcium chloride (CaCl2). In this strategy, the CS-HA serves as a cation/anion substrate to form stable hydrogel structure with CaCl2 salt. MOF-303 and GO exhibit a significantly enhanced water harvesting capacity at low RH (≤30% RH). CaCl2 additionally improves structural stability, firmly locking the MOF-303 and GO particles into the entangled chain structure of the micro-gel network. The hydrophilicity and porosity of CS-HA frameworks promote diffusion and storage of water molecules, realizing the effective atmospheric moisture capture of the CHG. The CHG realizes a high-water uptake of ≈0.78 g g−1 at 20% RH, and after absorbing water to saturation at 45% RH, it achieves ≈0.93 g g−1 in 120 min under 0.50-sun illumination. Especially, CHG on a large scale displays a high sorption-desorption efficiency, which achieves an excellent freshwater yield of ≈9.95 L kg−1 day−1 under ≈25% RH and temperature of ≈30 °C via the self-made device. This work offers new insights into the design of high-performance materials for AWH applications in water-lacking situations or arid regions.
KW - MOF-303
KW - atmospheric water harvesting
KW - extremely low humidity
KW - freshwater production
KW - super-hygroscopic composite
UR - https://www.scopus.com/pages/publications/105006473712
U2 - 10.1002/smll.202503948
DO - 10.1002/smll.202503948
M3 - 文章
C2 - 40411891
AN - SCOPUS:105006473712
SN - 1613-6810
VL - 21
JO - Small
JF - Small
IS - 29
M1 - 2503948
ER -