| Literature DB >> 33179394 |
Li Cao1,2, Hong Wu1,2,3, Yu Cao1,2, Chunyang Fan1,2, Rui Zhao1,2, Xueyi He1,2, Pengfei Yang1,2, Benbing Shi1,2, Xinda You1,2, Zhongyi Jiang1,2,4.
Abstract
State-of-the-art proton exchange membranes (PEMs) often suffer from significantly reduced conductivity under low relative humidity, hampering their efficient application in fuel cells. Covalent organic frameworks (COFs) with pre-designable and well-defined structures hold promise to cope with the above challenge. However, fabricating defect-free, robust COF membranes proves an extremely difficult task due to the poor processability of COF materials. Herein, a bottom-up approach is developed to synthesize intrinsic proton-conducting COF (IPC-COF) nanosheets (NUS-9) in aqueous solutions via diffusion and solvent co-mediated modulation, enabling a controlled nucleation and in-plane-dominated IPC-COF growth. These nanosheets allow the facile fabrication of IPC-COF membranes. IPC-COF membranes with crystalline, rigid ion nanochannels exhibit a weakly humidity-dependent conductivity over a wide range of humidity (30-98%), 1-2 orders of magnitude higher than that of benchmark PEMs, and a prominent fuel cell performance of 0.93 W cm-2 at 35% RH and 80 °C arising from superior water retention and Grotthuss mechanism-dominated proton conduction.Entities:
Keywords: bottom-up synthesis; covalent organic framework; humidity dependence; ion membranes; nanochannels, proton conduction
Year: 2020 PMID: 33179394 DOI: 10.1002/adma.202005565
Source DB: PubMed Journal: Adv Mater ISSN: 0935-9648 Impact factor: 30.849