Anisotropic Biomass Microfluidics via Directed Moisture Transport and Enhanced Water‐Binding Capacity for High‐Yield Solar‐driven Atmospheric Water Harvesting

L Lvfei Zhang T Tao Yang Y Yao Niu X Xingtao Xu (Marine Science and Technology College) M Mohamed H. Helal (Center For Scientific Research and Entrepreneurship Northern Border University Arar Saudi Arabia) M Mahmoud M. Hessien Y Yanbin Qiu Y Yuanzhuo Zhong L Leqi Shen X Xinwu Ji M Meng An (Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics, Tsinghua University) Z Zeinhom M. El‐Bahy (Faculty of Science Department of Chemistry Al‐Azhar University Cairo Egypt) J Jia‐Han Zhang (Electronic‐Photonic Smart Sensing Device R&D Team Inner Mongolia Key Laboratory of Intelligent Communication and Sensing and Signal Processing School of Electronic Information Engineering Inner Mongolia University Hohhot China) Y Yingtang Zhou (Zhejiang Key Laboratory of Petrochemical Environmental Pollution Control, National Engineering Research Center for Marine Aquaculture) Z Zhengtong Li

Abstract

ABSTRACT Solar‐driven adsorption–desorption‐based atmospheric water harvesting (AD‐AWH) presents a promising strategy for sustainable freshwater production. However, conventional hygroscopic materials typically feature disordered internal architectures, severely hindering vapor diffusion and heat transfer. These structural limitations constrain adsorption kinetics and elevate the energy demand for desorption. Here, we report a biomass‐based hygroscopic aerogel (BHA) with vertically aligned microfluidic channels, fabricated via directional freeze‐drying. This anisotropic architecture enables directed vertical moisture transport combined with radial diffusion into secondary pores, effectively reducing vapor transport tortuosity while simultaneously increasing water‐binding capacity. As a result, the BHA achieves a high‐water uptake of 3.18 g g −1 at 80% RH and a rapid adsorption rate of 0.25 g g −1 within 6 h at 30% RH. Upon surface modification with a photothermal ink, the evaporation rate increases to 2.89 kg m −2 h −1 , and the desorption ratio reaches 76.63% under one sun irradiation. Outdoor field tests confirm a high daily water yield of 1.51 L m −2 day −1 . Furthermore, the incorporation of montmorillonite significantly reinforces the mechanical robustness of the aerogel. This work presents a structurally engineered strategy for optimizing internal fluidic and thermal dynamics in hygroscopic materials, offering a scalable and energy‐efficient pathway for AD‐AWH in water‐stressed regions.

Article Details

Volume / Issue Vol. 38, Issue 11
Published February 01, 2026
ISSN 0935-9648
Publisher Unknown Publisher

Journal Info

Advanced Materials

Unknown Publisher

ISSN: 0935-9648 Physical Sciences

Authors (15)

L

Lvfei Zhang

T

Tao Yang

Y

Yao Niu

X

Xingtao Xu

Marine Science and Technology College

M

Mohamed H. Helal

Center For Scientific Research and Entrepreneurship Northern Border University Arar Saudi Arabia

M

Mahmoud M. Hessien

Y

Yanbin Qiu

Y

Yuanzhuo Zhong

L

Leqi Shen

X

Xinwu Ji

M

Meng An

Key Laboratory for Thermal Science and Power Engineering of Ministry of Education, Department of Engineering Mechanics, Tsinghua University

Z

Zeinhom M. El‐Bahy

Faculty of Science Department of Chemistry Al‐Azhar University Cairo Egypt

J

Jia‐Han Zhang

Electronic‐Photonic Smart Sensing Device R&D Team Inner Mongolia Key Laboratory of Intelligent Communication and Sensing and Signal Processing School of Electronic Information Engineering Inner Mongolia University Hohhot China

Y

Yingtang Zhou

Zhejiang Key Laboratory of Petrochemical Environmental Pollution Control, National Engineering Research Center for Marine Aquaculture

Z

Zhengtong Li