TY - JOUR
T1 - A cellulose-derived supramolecule for fast ion transport
AU - Dong, Qi
AU - Zhang, Xin
AU - Qian, Ji
AU - He, Shuaiming
AU - Mao, Yimin
AU - Brozena, Alexandra H.
AU - Zhang, Ye
AU - Pollard, Travis P.
AU - Borodin, Oleg A.
AU - Wang, Yanbin
AU - Chava, Bhargav Sai
AU - Das, Siddhartha
AU - Zavalij, Peter
AU - Segre, Carlo U.
AU - Zhu, Dongyang
AU - Xu, Lin
AU - Liang, Yanliang
AU - Yao, Yan
AU - Briber, Robert M.
AU - Li, Tian
AU - Hu, Liangbing
N1 - Publisher Copyright:
Copyright © 2022 The Authors, some rights reserved;
PY - 2022/12/7
Y1 - 2022/12/7
N2 - Supramolecular frameworks have been widely synthesized for ion transport applications. However, conventional approaches of constructing ion transport pathways in supramolecular frameworks typically require complex processes and display poor scalability, high cost, and limited sustainability. Here, we report the scalable and cost-effective synthesis of an ion-conducting (e.g., Na+) cellulose-derived supramolecule (Na-CS) that features a three-dimensional, hierarchical, and crystalline structure composed of massively aligned, one-dimensional, and ångström-scale open channels. Using wood-based Na-CS as a model material, we achieve high ionic conductivities (e.g., 0.23 S/cm in 20 wt% NaOH at 25 °C) even with a highly dense microstructure, in stark contrast to conventional membranes that typically rely on large pores (e.g., submicrometers to a few micrometers) to obtain comparable ionic conductivities. This synthesis approach can be universally applied to a variety of cellulose materials beyond wood, including cotton textiles, fibers, paper, and ink, which suggests excellent potential for a number of applications such as ion-conductive membranes, ionic cables, and ionotronic devices.
AB - Supramolecular frameworks have been widely synthesized for ion transport applications. However, conventional approaches of constructing ion transport pathways in supramolecular frameworks typically require complex processes and display poor scalability, high cost, and limited sustainability. Here, we report the scalable and cost-effective synthesis of an ion-conducting (e.g., Na+) cellulose-derived supramolecule (Na-CS) that features a three-dimensional, hierarchical, and crystalline structure composed of massively aligned, one-dimensional, and ångström-scale open channels. Using wood-based Na-CS as a model material, we achieve high ionic conductivities (e.g., 0.23 S/cm in 20 wt% NaOH at 25 °C) even with a highly dense microstructure, in stark contrast to conventional membranes that typically rely on large pores (e.g., submicrometers to a few micrometers) to obtain comparable ionic conductivities. This synthesis approach can be universally applied to a variety of cellulose materials beyond wood, including cotton textiles, fibers, paper, and ink, which suggests excellent potential for a number of applications such as ion-conductive membranes, ionic cables, and ionotronic devices.
UR - http://www.scopus.com/inward/record.url?scp=85143917271&partnerID=8YFLogxK
U2 - 10.1126/sciadv.add2031
DO - 10.1126/sciadv.add2031
M3 - Article
C2 - 36490337
AN - SCOPUS:85143917271
SN - 2375-2548
VL - 8
JO - Science advances
JF - Science advances
IS - 49
M1 - eadd2031
ER -