再生(生物学)
动力学
化学
共价键
材料科学
环境科学
有机化学
生物
细胞生物学
量子力学
物理
作者
Chao Sun,Yuhao Zhu,Pengpeng Shao,Liwei Chen,Xin Huang,Shuang Zhao,Dou Ma,Xuechun Jing,Bo Wang,Xiao Feng
标识
DOI:10.1002/anie.202217103
摘要
Atmospheric water harvesting represents a promising technique to address water stress. Advanced adsorbents have been rationally designed to achieve high water uptake, yet their water sorption kinetics and regeneration temperature greatly limit water production efficiency. Herein, we demonstrated that 2D covalent organic frameworks (COFs), featuring hydrophobic skeleton, proper hydrophilic site density, and 1D open channels significantly lowered the water diffusion and desorption energy barrier. DHTA-Pa COF showed a high water uptake of 0.48 g/g at 30 % R.H. with a remarkable adsorption rate of 0.72 L/Kg/h (298 K) and a desorption rate of 2.58 L/Kg/h (333 K). Moreover, more than 90 % adsorbed water could be released within 20 min at 313 K. This kinetic performance surpassed the reported porous materials and boosted the efficiency for multiple water extraction cycles. It may shed light on the material design strategy to achieve high daily water production with low-energy input.
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