TY - JOUR
T1 - Layered Janus Gel for Efficient Portable Solar H2 Production From Atmospheric Moisture
AU - Yan, Xueli
AU - Zhao, Xingyuan
AU - Tian, Li
AU - Zhang, Chunyang
AU - Zhao, Shidong
AU - Wang, Xinyi
AU - Guan, Xiangjiu
AU - Shi, Jinwen
AU - Liu, Maochang
N1 - Publisher Copyright:
© 2026 Wiley-VCH GmbH.
PY - 2026
Y1 - 2026
N2 - Photothermal catalytic atmospheric water splitting enables off-grid in situ H2 production but remains constrained by low energy conversion efficiency, sacrificial agent dependence, and sorbent degradation. Herein, we report a Janus-structured gel with asymmetric wettability between its top and bottom surfaces, consisting of a LiCl-modified nanofibrillated cellulose hygroscopic bottom layer, a SrTiO3:Al photocatalytic top layer, and a strategically engineered polyvinylidene fluoride interlayer, designed for clean and efficient in situ H2 production. The uniquely designed interlayer synergistically facilitates efficient water desorption from the hygroscopic matrix, creates a liquid-exclusion interface minimizing H2 diffusion resistance, and serves as a protective barrier to inhibit hygroscopic component oxidation. Benefiting from this design, this Janus layered system achieves sustained H2 production from air across diverse humidity levels. At 90% relative humidity, it delivers a hygroscopic capacity of 4.21 gH2O gsorbent−1, a H2 production rate of 78.50 mmol h−1 m−2, and a solar-to-hydrogen efficiency of 0.35%. These findings demonstrate the promise of the Janus-structured gel for portable, off-grid, and green H2 supply systems.
AB - Photothermal catalytic atmospheric water splitting enables off-grid in situ H2 production but remains constrained by low energy conversion efficiency, sacrificial agent dependence, and sorbent degradation. Herein, we report a Janus-structured gel with asymmetric wettability between its top and bottom surfaces, consisting of a LiCl-modified nanofibrillated cellulose hygroscopic bottom layer, a SrTiO3:Al photocatalytic top layer, and a strategically engineered polyvinylidene fluoride interlayer, designed for clean and efficient in situ H2 production. The uniquely designed interlayer synergistically facilitates efficient water desorption from the hygroscopic matrix, creates a liquid-exclusion interface minimizing H2 diffusion resistance, and serves as a protective barrier to inhibit hygroscopic component oxidation. Benefiting from this design, this Janus layered system achieves sustained H2 production from air across diverse humidity levels. At 90% relative humidity, it delivers a hygroscopic capacity of 4.21 gH2O gsorbent−1, a H2 production rate of 78.50 mmol h−1 m−2, and a solar-to-hydrogen efficiency of 0.35%. These findings demonstrate the promise of the Janus-structured gel for portable, off-grid, and green H2 supply systems.
KW - atmospheric water splitting
KW - Janus-structured catalyst
KW - off-grid portable energy supply
KW - photothermal coupling
KW - solar hydrogen production
UR - https://www.scopus.com/pages/publications/105040674171
U2 - 10.1002/aenm.71161
DO - 10.1002/aenm.71161
M3 - 文章
AN - SCOPUS:105040674171
SN - 1614-6832
JO - Advanced Energy Materials
JF - Advanced Energy Materials
ER -