Entangled Mesh Hydrogels with Macroporous Topologies via Cryogelation for Rapid Atmospheric Water Harvesting

被引:20
作者
Sun, Jiajun [1 ,2 ]
Ni, Feng [3 ]
Gu, Jincui [1 ,2 ]
Si, Muqing [1 ,2 ]
Liu, Depeng [1 ,2 ]
Zhang, Chang [4 ]
Shui, Xiaoxue [1 ]
Xiao, Peng [1 ,2 ]
Chen, Tao [1 ,2 ]
机构
[1] Chinese Acad Sci, Ningbo Inst Mat Technol & Engn, Key Lab Adv Marine Mat, Ningbo 315201, Peoples R China
[2] Univ Chinese Acad Sci, Sch Chem Sci, Beijing 100049, Peoples R China
[3] Max Planck Inst Microstruct Phys, D-06120 Halle An Der Saale, Germany
[4] NingboTech Univ, Sch Biol & Chem Engn, Ningbo 315100, Peoples R China
关键词
enhanced sorption/desorption kinetics; highly entangled mesh; hygroscopic hydrogels; macroporous topology; sorption-based atmospheric water harvesting; METAL-ORGANIC FRAMEWORKS; DENSITY; YIELD; AIR;
D O I
10.1002/adma.202314175
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Sorption-based atmospheric water harvesting (SAWH) is a promising technology to alleviate freshwater scarcity. Recently, hygroscopic salt-hydrogel composites (HSHCs) have emerged as attractive candidates with their high water uptake, versatile designability, and scale-up fabrication. However, achieving high-performance SAWH applications for HSHCs has been challenging because of their sluggish kinetics, attributed to their limited mass transport properties. Herein, a universal network engineering of hydrogels using a cryogelation method is presented, significantly improving the SAWH kinetics of HSHCs. As a result of the entangled mesh confinements formed during cryogelation, a stable macroporous topology is attained and maintained within the obtained entangled-mesh hydrogels (EMHs), leading to significantly enhanced mass transport properties compared to conventional dense hydrogels (CDHs). With it, corresponding hygroscopic EMHs (HEMHs) simultaneously exhibit faster moisture sorption and solar-driven water desorption. Consequently, a rapid-cycling HEMHs-based harvester delivers a practical freshwater production of 2.85 Lwater kgsorbents-1 day-1 via continuous eight sorption/desorption cycles, outperforming other state-of-the-art hydrogel-based sorbents. Significantly, the generalizability of this strategy is validated by extending it to other hydrogels used in HSHCs. Overall, this work offers a new approach to efficiently address long-standing challenges of sluggish kinetics in current HSHCs, promoting them toward the next-generation SAWH applications. A universal network engineering is proposed to develop the entangled-mesh hydrogels (EMHs) with a distinct aerogel-like macroporous topology, exhibiting a significantly improved mass transport property compared with the conventional dense hydrogels by regular polymerization. As such, the hygroscopic EMHs deliver remarkably faster moisture sorption and solar-driven water desorption kinetics, achieving high-performance sorption-based atmospheric water harvesting. image
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页数:12
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