Ion-Gated Gas Separation through Porous Graphene.

Tian, Ziqi; Mahurin, Shannon M; Dai, Sheng; Jiang, De-En · Nano Lett · 2017

basic_science · Level V

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Abstract

Porous graphene holds great promise as a one-atom-thin, high-permeance membrane for gas separation, but to precisely control the pore size down to 3-5 Å proves challenging. Here we propose an ion-gated graphene membrane comprising a monolayer of ionic liquid-coated porous graphene to dynamically modulate the pore size to achieve selective gas separation. This approach enables the otherwise nonselective large pores on the order of 1 nm in size to be selective for gases whose diameters range from 3 to 4 Å. We show from molecular dynamics simulations that CO<sub>2</sub>, N<sub>2</sub>, and CH<sub>4</sub> all can permeate through a 6 Å nanopore in graphene without any selectivity. But when a monolayer of [emim][BF<sub>4</sub>] ionic liquid (IL) is deposited on the porous graphene, CO<sub>2</sub> has much higher permeance than the other two gases. We find that the anion dynamically modulates the pore size by hovering above the pore and provides affinity for CO<sub>2</sub>, while the larger cation (which cannot go through the pore) holds the anion in place via electrostatic attraction. This composite membrane is especially promising for CO<sub>2</sub>/CH<sub>4</sub> separation, yielding a CO<sub>2</sub>/CH<sub>4</sub> selectivity of about 42 and CO<sub>2</sub> permeance of ∼10<sup>5</sup> GPU (gas permeation unit). We further demonstrate that selectivity and permeance can be tuned by the anion size, pore size, and IL thickness. The present work points toward a promising direction of using the atom-thin ionic liquid/porous graphene hybrid membrane for high-permeance, selective gas separation that allows a greater flexibility in substrate pore size control.