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  • Proton transport through on... Proton transport through one-atom-thick crystals
    Hu, S; Lozada-Hidalgo, M; Wang, F C ... Nature, 12/2014, Letnik: 516, Številka: 7530
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    Graphene is increasingly explored as a possible platform for developing novel separation technologies. This interest has arisen because it is a maximally thin membrane that, once perforated with ...
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  • Scalable and efficient sepa... Scalable and efficient separation of hydrogen isotopes using graphene-based electrochemical pumping
    Lozada-Hidalgo, M; Zhang, S; Hu, S ... Nature communications, 05/2017, Letnik: 8, Številka: 1
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    Thousands of tons of isotopic mixtures are processed annually for heavy-water production and tritium decontamination. The existing technologies remain extremely energy intensive and require large ...
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  • Sieving hydrogen isotopes t... Sieving hydrogen isotopes through two-dimensional crystals
    Lozada-Hidalgo, M.; Hu, S.; Marshall, O. ... Science, 01/2016, Letnik: 351, Številka: 6268
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    One-atom-thick crystals are impermeable to atoms and molecules, but hydrogen ions (thermal protons) penetrate through them. We show that monolayers of graphene and boron nitride can be used to ...
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  • Perfect proton selectivity ... Perfect proton selectivity in ion transport through two-dimensional crystals
    Mogg, L; Zhang, S; Hao, G-P ... Nature communications, 09/2019, Letnik: 10, Številka: 1
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    Defect-free monolayers of graphene and hexagonal boron nitride are surprisingly permeable to thermal protons, despite being completely impenetrable to all gases. It remains untested whether small ...
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  • Exponentially selective mol... Exponentially selective molecular sieving through angstrom pores
    Sun, P Z; Yagmurcukardes, M; Zhang, R ... Nature communications, 12/2021, Letnik: 12, Številka: 1
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    Two-dimensional crystals with angstrom-scale pores are widely considered as candidates for a next generation of molecular separation technologies aiming to provide extreme, exponentially large ...
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  • Wien effect in interfacial ... Wien effect in interfacial water dissociation through proton-permeable graphene electrodes
    Cai, J.; Griffin, E.; Guarochico-Moreira, V. H. ... Nature communications, 10/2022, Letnik: 13, Številka: 1
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    Abstract Strong electric fields can accelerate molecular dissociation reactions. The phenomenon known as the Wien effect was previously observed using high-voltage electrolysis cells that produced ...
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