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无离心分离技术——通过错流过滤分离溶液剥离二维纳米片。

Centrifuge-Free Separation of Solution-Exfoliated 2D Nanosheets via Cross-Flow Filtration.

机构信息

Department of Materials Science and Engineering, Northwestern University, 2220 Campus Dr., Evanston, IL, 60208, USA.

Department of Chemistry, Northwestern University, 2145 Sheridan Rd., Evanston, IL, 60208, USA.

出版信息

Adv Mater. 2023 Jun;35(24):e2212042. doi: 10.1002/adma.202212042. Epub 2023 Apr 28.

Abstract

Solution-processed graphene is a promising material for numerous high-volume applications including structural composites, batteries, sensors, and printed electronics. However, the polydisperse nature of graphene dispersions following liquid-phase exfoliation poses major manufacturing challenges, as incompletely exfoliated graphite flakes must be removed to achieve optimal properties and downstream performance. Incumbent separation schemes rely on centrifugation, which is highly energy-intensive and limits scalable manufacturing. Here, cross-flow filtration (CFF) is introduced as a centrifuge-free processing method that improves the throughput of graphene separation by two orders of magnitude. By tuning membrane pore sizes between microfiltration and ultrafiltration length scales, CFF can also be used for efficient recovery of solvents and stabilizing polymers. In this manner, life cycle assessment and techno-economic analysis reveal that CFF reduces greenhouse gas emissions, fossil energy usage, water consumption, and specific production costs of graphene manufacturing by 57%, 56%, 63%, and 72%, respectively. To confirm that CFF produces electronic-grade graphene, CFF-processed graphene nanosheets are formulated into printable inks, leading to state-of-the-art thin-film conductivities exceeding 10 S m . This CFF methodology can likely be generalized to other van der Waals layered solids, thus enabling sustainable manufacturing of the diverse set of applications currently being pursued for 2D materials.

摘要

溶液处理的石墨烯是一种很有前途的材料,可用于许多大规模应用,包括结构复合材料、电池、传感器和印刷电子。然而,液相剥离后石墨烯分散体的多分散性给制造带来了重大挑战,因为必须去除不完全剥离的石墨薄片,才能实现最佳性能和下游性能。现有的分离方案依赖于离心分离,这种方法能耗很高,限制了可扩展的制造。在这里,引入了错流过滤(CFF)作为一种无离心机的处理方法,可将石墨烯分离的通量提高两个数量级。通过调整膜孔径在微滤和超滤长度尺度之间,CFF 还可用于有效回收溶剂和稳定聚合物。通过生命周期评估和技术经济分析表明,CFF 将石墨烯制造的温室气体排放、化石能源使用、水耗和特定生产成本分别减少了 57%、56%、63%和 72%。为了确认 CFF 生产的是电子级石墨烯,将 CFF 处理的石墨烯纳米片制成可印刷的油墨,从而得到超过 10 S m 的薄膜电导率,这是目前最先进的水平。这种 CFF 方法可能适用于其他范德华层状固体,从而能够可持续地制造目前正在追求的 2D 材料的各种应用。

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