TY - JOUR
T1 - Space-Confined Synthesis of Sulfonated Covalent Organic Framework‒Polymer Membranes for Enhanced Osmotic Energy Conversion
AU - Guo, Yumeng
AU - Sun, Xiang
AU - Zhang, Qianxi
AU - Low, Ze Xian
AU - Wang, Huanting
AU - Zhu, Ying
AU - Jiang, Lei
N1 - Publisher Copyright:
© 2025 The Author(s). Small published by Wiley-VCH GmbH.
PY - 2025/10/9
Y1 - 2025/10/9
N2 - Osmotic energy, an infinite, clean energy source, can be efficiently harnessed through reverse electrodialysis using ion-selective membranes. While polymeric membranes are excellent candidates due to their solution-processability and scalability, their non-uniform pore architecture and high resistance limit their power density output. Here, an in situ space-confined synthesis strategy is proposed to fabricate sulfonated covalent organic frameworks within a sulfonated polymeric network, resulting in interconnected, well-defined ion channels. This allows a maximum power density reaching up to 40.33 W m−2 under a 500-fold salinity gradient and a real-world power density of 14.84 W m−2 when extracting osmotic energy from natural seawater and river water. This study underscores the potential of space-confined synthesis strategies in creating flexible and scalable ion-selective membranes for efficient salinity gradient energy harvesting, marking a significant step toward their practical applications.
AB - Osmotic energy, an infinite, clean energy source, can be efficiently harnessed through reverse electrodialysis using ion-selective membranes. While polymeric membranes are excellent candidates due to their solution-processability and scalability, their non-uniform pore architecture and high resistance limit their power density output. Here, an in situ space-confined synthesis strategy is proposed to fabricate sulfonated covalent organic frameworks within a sulfonated polymeric network, resulting in interconnected, well-defined ion channels. This allows a maximum power density reaching up to 40.33 W m−2 under a 500-fold salinity gradient and a real-world power density of 14.84 W m−2 when extracting osmotic energy from natural seawater and river water. This study underscores the potential of space-confined synthesis strategies in creating flexible and scalable ion-selective membranes for efficient salinity gradient energy harvesting, marking a significant step toward their practical applications.
KW - covalent organic framework
KW - nanofluidic membrane
KW - osmotic energy conversion
KW - polymer membrane
UR - https://www.scopus.com/pages/publications/105014011279
U2 - 10.1002/smll.202508217
DO - 10.1002/smll.202508217
M3 - 文章
C2 - 40852770
AN - SCOPUS:105014011279
SN - 1613-6810
VL - 21
JO - Small
JF - Small
IS - 40
M1 - e08217
ER -