| Keyword search (4,163 papers available) | ![]() |
"Zhou Y" Authored Publications:
| Title | Authors | PubMed ID | |
|---|---|---|---|
| 1 | Personalized biomarkers of multiscale functional alterations in temporal lobe epilepsy | Xie K; Sahlas E; Ngo A; Chen J; Arafat T; Royer J; Zhou Y; Rodríguez-Cruces R; Dascal A; Caldairou B; Fadaie F; Barnett A; Audrain S; Larivière S; Caciagli L; Pana R; Weil AG; Grova C; Frauscher B; Schrader DV; Zhang Z; Concha L; Bernasconi A; Bernasconi N; Bernhardt BC; | 41258102 SOH |
| 2 | High selectivity framework polymer membranes chemically tuned towards fast anion conduction | Fang J; Zhang G; Goulet MA; Zuo P; Zhou Y; Li H; Jiang J; Guiver MD; Yang Z; Xu T; | 40188171 ENCS |
| 3 | Transcriptome-Wide Off-Target Effects of Steric-Blocking Oligonucleotides | Holgersen EM; Gandhi S; Zhou Y; Kim J; Vaz B; Bogojeski J; Bugno M; Shalev Z; Cheung-Ong K; Gonçalves J; O' Hara M; Kron K; Verby M; Sun M; Kakaradov B; Delong A; Merico D; Deshwar AG; | 34388351 ENCS |
| 4 | Spatiotemporal analysis of land use pattern and stream water quality in southern Alberta, Canada | Chen Z; An C; Tan Q; Tian X; Li G; Zhou Y; | 34214919 ENCS |
| 5 | Assessment of regional greenhouse gas emission from beef cattle production: A case study of Saskatchewan in Canada. | Chen Z, An C, Fang H, Zhang Y, Zhou Z, Zhou Y, Zhao S | 32217321 ENCS |
| 6 | Insights into the Toxicity of Triclosan to Green Microalga Chlorococcum sp. Using Synchrotron-Based Fourier Transform Infrared Spectromicroscopy: Biophysiological Analyses and Roles of Environmental Factors. | Xin X, Huang G, An C, Huang C, Weger H, Zhao S, Zhou Y, Rosendahl S | 29377676 ENCS |
| 7 | Simulations and error analysis of the CNC milling of a face gear tooth with given tool paths. | Yi H, Zhou Y, Tang J, Chen ZC | 31297425 ENCS |
| Title: | High selectivity framework polymer membranes chemically tuned towards fast anion conduction | ||||
| Authors: | Fang J, Zhang G, Goulet MA, Zuo P, Zhou Y, Li H, Jiang J, Guiver MD, Yang Z, Xu T | ||||
| Link: | https://pubmed.ncbi.nlm.nih.gov/40188171/ | ||||
| DOI: | 10.1038/s41467-025-58638-0 | ||||
| Publication: | Nature communications | ||||
| Keywords: | |||||
| PMID: | 40188171 | Category: | Date Added: | 2025-04-06 | |
| Dept Affiliation: |
ENCS
1 Key Laboratory of Precision and Intelligent Chemistry, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China. 2 Department of Applied Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China. 3 Hefei National Research Center for Physical Sciences at the Microscale, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China. 4 Department of Chemical and Materials Engineering, Concordia University, Montreal, QC, H3G 1M8, Canada. 5 State Key Laboratory of Engines, School of Mechanical Engineering, Tianjin University, Tianjin, 300072, P. R. China. 6 Key Laboratory of Precision and Intelligent Chemistry, University of Science and Technology of China, Hefei, Anhui, 230026, P. R. China. yangzj09@ustc.edu.cn. 7 Department of Applied Chemistry, School of Chemistry and Materials Science, University of Science and Technology of China, Hefei, Anhui, 230026, P |
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Description: |
Studying ion transport in the interaction confinement regime has important implications for membrane design and advanced electrochemical devices. A key example is the rapid-charging capability of aqueous organic redox flow batteries, enabled by near-frictionless Na+/K+ transport within triazine framework membranes. However, achieving similar breakthroughs for devices using anions (e.g., Cl-) is challenging due to the suppression of anion transport under confinement, known as the charge asymmetry effect. We present a series of anion-selective covalent triazine framework membranes with comparable densities of subnanometer ion transport channels and identical micropore size distributions, which help to overcome the charge asymmetry effect and promote fast anion conduction. We demonstrate that regulating the charge distribution in the membrane frameworks reduces the energy barrier for anion transport, resulting in nearly doubled Cl- conductivity and adding almost no additional energy barrier for F- transport. This membrane enables an aqueous organic redox flow battery using Cl- ions to operate at high current densities, exceeding battery performance demonstrated by current membranes. These findings could benefit various electrochemical devices and inspire single-species selectivity in separation membranes. |



