TY - JOUR
T1 - Advances in Two-Dimensional Ion-Selective Membranes
T2 - Bridging Nanoscale Insights to Industrial-Scale Salinity Gradient Energy Harvesting
AU - Ma, Xinyi
AU - Neek-Amal, Mehdi
AU - Sun, Chengzhen
N1 - Publisher Copyright:
© 2024 American Chemical Society.
PY - 2024/5/21
Y1 - 2024/5/21
N2 - Salinity gradient energy, often referred to as the Gibbs free energy difference between saltwater and freshwater, is recognized as “blue energy” due to its inherent cleanliness, renewability, and continuous availability. Reverse electrodialysis (RED), relying on ion-selective membranes, stands as one of the most prevalent and promising methods for harnessing salinity gradient energy to generate electricity. Nevertheless, conventional RED membranes face challenges such as insufficient ion selectivity and transport rates and the difficulty of achieving the minimum commercial energy density threshold of 5 W/m2. In contrast, two-dimensional nanostructured materials, featuring nanoscale channels and abundant functional groups, offer a breakthrough by facilitating rapid ion transport and heightened selectivity. This comprehensive review delves into the mechanisms of osmotic power generation within a single nanopore and nanochannel, exploring optimal nanopore dimensions and nanochannel lengths. We subsequently examine the current landscape of power generation using two-dimensional nanostructured materials in laboratory-scale settings across various test areas. Furthermore, we address the notable decline in power density observed as test areas expand and propose essential criteria for the industrialization of two-dimensional ion-selective membranes. The review concludes with a forward-looking perspective, outlining future research directions, including scalable membrane fabrication, enhanced environmental adaptability, and integration into multiple industries. This review aims to bridge the gap between previous laboratory-scale investigations of two-dimensional ion-selective membranes in salinity gradient energy conversion and their potential large-scale industrial applications.
AB - Salinity gradient energy, often referred to as the Gibbs free energy difference between saltwater and freshwater, is recognized as “blue energy” due to its inherent cleanliness, renewability, and continuous availability. Reverse electrodialysis (RED), relying on ion-selective membranes, stands as one of the most prevalent and promising methods for harnessing salinity gradient energy to generate electricity. Nevertheless, conventional RED membranes face challenges such as insufficient ion selectivity and transport rates and the difficulty of achieving the minimum commercial energy density threshold of 5 W/m2. In contrast, two-dimensional nanostructured materials, featuring nanoscale channels and abundant functional groups, offer a breakthrough by facilitating rapid ion transport and heightened selectivity. This comprehensive review delves into the mechanisms of osmotic power generation within a single nanopore and nanochannel, exploring optimal nanopore dimensions and nanochannel lengths. We subsequently examine the current landscape of power generation using two-dimensional nanostructured materials in laboratory-scale settings across various test areas. Furthermore, we address the notable decline in power density observed as test areas expand and propose essential criteria for the industrialization of two-dimensional ion-selective membranes. The review concludes with a forward-looking perspective, outlining future research directions, including scalable membrane fabrication, enhanced environmental adaptability, and integration into multiple industries. This review aims to bridge the gap between previous laboratory-scale investigations of two-dimensional ion-selective membranes in salinity gradient energy conversion and their potential large-scale industrial applications.
KW - industrialization
KW - ion-selective membranes
KW - large-area power reduction
KW - large-scale fabrication
KW - nanopores and nanochannels
KW - reverse electrodialysis
KW - salinity gradient energy
KW - two-dimensional materials
UR - https://www.scopus.com/pages/publications/85192856378
U2 - 10.1021/acsnano.3c11646
DO - 10.1021/acsnano.3c11646
M3 - 文献综述
C2 - 38733357
AN - SCOPUS:85192856378
SN - 1936-0851
VL - 18
SP - 12610
EP - 12638
JO - ACS Nano
JF - ACS Nano
IS - 20
ER -