Department of Chemical and Biomolecular Engineering, Vanderbilt University, Nashville, TN, 37235-1826, USA.
Department of Mechanical Engineering, Massachusetts Institute of Technology, Cambridge, MA, 02139, USA.
Adv Mater. 2018 Dec;30(49):e1804977. doi: 10.1002/adma.201804977. Epub 2018 Oct 9.
Direct synthesis of graphene with well-defined nanoscale pores over large areas can transform the fabrication of nanoporous atomically thin membranes (NATMs) and greatly enhance their potential for practical applications. However, scalable bottom-up synthesis of continuous sheets of nanoporous graphene that maintain integrity over large areas has not been demonstrated. Here, it is shown that a simple reduction in temperature during chemical vapor deposition (CVD) on Cu induces in-situ formation of nanoscale defects (≤2-3 nm) in the graphene lattice, enabling direct and scalable synthesis of nanoporous monolayer graphene. By solution-casting of hierarchically porous polyether sulfone supports on the as-grown nanoporous CVD graphene, large-area (>5 cm ) NATMs for dialysis applications are demonstrated. The synthesized NATMs show size-selective diffusive transport and effective separation of small molecules and salts from a model protein, with ≈2-100× increase in permeance along with selectivity better than or comparable to state-of-the-art commercially available polymeric dialysis membranes. The membranes constitute the largest fully functional NATMs fabricated via bottom-up nanopore formation, and can be easily scaled up to larger sizes permitted by CVD synthesis. The results highlight synergistic benefits in blending traditional membrane casting with bottom-up pore creation during graphene CVD for advancing NATMs toward practical applications.
在大面积上直接合成具有明确纳米级孔径的石墨烯,可以改变纳米多孔原子级薄(NATM)膜的制造方式,并极大地提高其实际应用的潜力。然而,具有大面积完整性的连续纳米多孔石墨烯的可扩展自下而上的合成尚未得到证明。在这里,研究表明在铜上进行化学气相沉积(CVD)时,通过简单地降低温度,会在石墨烯晶格中诱导原位形成纳米级缺陷(≤2-3nm),从而能够直接且可扩展地合成纳米多孔单层石墨烯。通过在生长的纳米多孔 CVD 石墨烯上浇铸分层多孔聚醚砜支撑物,可以制备用于透析应用的大面积(>5cm)NATM。所合成的 NATM 表现出尺寸选择性的扩散传输以及从小分子和盐中有效分离模型蛋白,其渗透率约增加了 2-100 倍,选择性优于或可与最先进的市售聚合物透析膜相媲美。这些膜构成了通过自下而上的纳米孔形成制造的最大的全功能 NATM,并且可以很容易地按 CVD 合成允许的更大尺寸进行扩展。这些结果突出了在石墨烯 CVD 过程中,将传统的膜浇铸与自下而上的孔形成相结合的协同优势,这有助于将 NATM 推向实际应用。