Department of Mechanical Engineering , Massachusetts Institute of Technology , Cambridge , Massachusetts 02139 , United States.
Department of Chemical and Biomolecular Engineering , Vanderbilt University , Nashville , Tennessee 37235-1826 , United States.
ACS Appl Mater Interfaces. 2018 Mar 28;10(12):10369-10378. doi: 10.1021/acsami.8b00846. Epub 2018 Mar 19.
Scalable, cost-effective synthesis and integration of graphene is imperative to realize large-area applications such as nanoporous atomically thin membranes (NATMs). Here, we report a scalable route to the production of NATMs via high-speed, continuous synthesis of large-area graphene by roll-to-roll chemical vapor deposition (CVD), combined with casting of a hierarchically porous polymer support. To begin, we designed and built a two zone roll-to-roll graphene CVD reactor, which sequentially exposes the moving foil substrate to annealing and growth atmospheres, with a sharp, isothermal transition between the zones. The configurational flexibility of the reactor design allows for a detailed evaluation of key parameters affecting graphene quality and trade-offs to be considered for high-rate roll-to-roll graphene manufacturing. With this system, we achieve synthesis of uniform high-quality monolayer graphene ( I/ I < 0.065) at speeds ≥5 cm/min. NATMs fabricated from the optimized graphene, via polymer casting and postprocessing, show size-selective molecular transport with performance comparable to that of membranes made from conventionally synthesized graphene. Therefore, this work establishes the feasibility of a scalable manufacturing process of NATMs, for applications including protein desalting and small-molecule separations.
实现大面积应用,如纳米多孔原子级薄 膜(NATMs),需要可扩展且具有成本效益的石墨烯合成和集成。在这里,我们通过卷对卷化学气相沉积(CVD)高速、连续合成大面积石墨烯,并结合分层多孔聚合物支撑体的浇铸,报告了一种生产 NATMs 的可扩展途径。首先,我们设计并构建了一个两区卷对卷石墨烯 CVD 反应器,它将移动箔基底依次暴露于退火和生长气氛中,两区之间存在急剧的等温过渡。该反应器设计的结构灵活性允许对影响石墨烯质量的关键参数进行详细评估,并为高速卷对卷石墨烯制造进行权衡考虑。使用该系统,我们以≥5cm/min 的速度实现了均匀高质量单层石墨烯(I/ I < 0.065)的合成。通过聚合物浇铸和后处理从优化的石墨烯制备的 NATMs 显示出具有与传统合成石墨烯制成的膜相当的尺寸选择性分子传输性能。因此,这项工作为包括蛋白质脱盐和小分子分离在内的应用建立了可扩展的 NATMs 制造工艺的可行性。