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Ultrafast, stable ionic and molecular sieving through functionalized boron nitride membranes
journal contribution
posted on 2019-08-01, 00:00 authored by Cheng Chen, Alex QinAlex Qin, Dan LiuDan Liu, Jiemin Wang, Guoliang Yang, Yuyu Su, Liangzhu Zhang, Wei Cao, Ming Ma, Yijun Qian, Yuchen LiuYuchen Liu, Jefferson Zhe Liu, Weiwei LeiWeiwei LeiPorous membranes play an important role in the separation technologies such as gas purification, solute nanofiltration, and desalination. An ideal membrane should be thin to maximize permeation speed, have optimum pore sizes to maximize selectivity, and be stable in various harsh conditions. Here, we show that the nanometer-thick membrane prepared by means of filtration of functionalized boron nitride (FBN) water suspensions can block solutes with hydrated radii larger than 4.3
Å in water. The FBN membranes with abundant nanochannels reduce the path length of ions. As molecular sieves, the FBN membrane can permeate small ions at an ultrahigh ratea 25-fold enhancement compared with that of its theoretical diffusion rate and much higher than the graphene oxide membrane. Importantly, the FBN membrane exhibits excellent permeability even when it is immersed in acidic, alkaline, and basic salts solutions because of its intrinsic chemical stability. The molecular dynamics simulations further confirmed that the nanocapillaries formed within the FBN membrane in the hydrated state were responsible for high permeation performance. The simple vacuum filtration fabricated FBN membrane with angstrom-sized channels and ultrafast permeation of ions promises great potential applications in the areas of barrier separation and water purification.
Å in water. The FBN membranes with abundant nanochannels reduce the path length of ions. As molecular sieves, the FBN membrane can permeate small ions at an ultrahigh ratea 25-fold enhancement compared with that of its theoretical diffusion rate and much higher than the graphene oxide membrane. Importantly, the FBN membrane exhibits excellent permeability even when it is immersed in acidic, alkaline, and basic salts solutions because of its intrinsic chemical stability. The molecular dynamics simulations further confirmed that the nanocapillaries formed within the FBN membrane in the hydrated state were responsible for high permeation performance. The simple vacuum filtration fabricated FBN membrane with angstrom-sized channels and ultrafast permeation of ions promises great potential applications in the areas of barrier separation and water purification.
History
Journal
ACS applied materials & interfacesVolume
11Issue
33Pagination
30430 - 30436Publisher
American Chemical SocietyLocation
Washington, D.C.Publisher DOI
ISSN
1944-8244eISSN
1944-8252Language
engPublication classification
C1 Refereed article in a scholarly journalCopyright notice
2019, American Chemical SocietyUsage metrics
Categories
No categories selectedKeywords
Science & TechnologyTechnologyNanoscience & NanotechnologyMaterials Science, MultidisciplinaryScience & Technology - Other TopicsMaterials Sciencefunctionalized boron nitridemembranemolecular sievingangstrom-sized channelsmolecular dynamics (MD) simulationsGRAPHENE OXIDE MEMBRANESNANOSHEETSDESALINATIONSEPARATIONTRANSPORTDYNAMICSWATER