Dudchenko Alexander V, Chen Chuxiao, Cardenas Alexis, Rolf Julianne, Jassby David
Department of Chemical and Environmental Engineering, University of California, Bourns Hall A241, Riverside, California 92521, USA.
Nat Nanotechnol. 2017 Jul;12(6):557-563. doi: 10.1038/nnano.2017.102. Epub 2017 May 29.
Water shortages and brine waste management are increasing challenges for coastal and inland regions, with high-salinity brines presenting a particularly challenging problem. These high-salinity waters require the use of thermally driven treatment processes, such as membrane distillation, which suffer from high complexity and cost. Here, we demonstrate how controlling the frequency of an applied alternating current at high potentials (20 V) to a porous thin-film carbon nanotube (CNT)/polymer composite Joule heating element can prevent CNT degradation in ionizable environments such as high-salinity brines. By operating at sufficiently high frequencies, these porous thin-films can be directly immersed in highly ionizable environments and used as flow-through heating elements. We demonstrate that porous CNT/polymer composites can be used as self-heating membranes to directly heat high-salinity brines at the water/vapour interface of the membrane distillation element, achieving high single-pass recoveries that approach 100%, far exceeding standard membrane distillation recovery limits.
水资源短缺和盐水废物管理对沿海和内陆地区来说是日益严峻的挑战,高盐度盐水带来了尤为棘手的问题。这些高盐度水体需要采用热驱动处理工艺,如膜蒸馏,但此类工艺存在复杂性高和成本高的问题。在此,我们展示了如何通过控制在高电位(20 V)下施加到多孔薄膜碳纳米管(CNT)/聚合物复合焦耳加热元件上的交流电频率,来防止CNT在诸如高盐度盐水等可电离环境中降解。通过在足够高的频率下运行,这些多孔薄膜可直接浸入高度可电离的环境中,并用作流通式加热元件。我们证明,多孔CNT/聚合物复合材料可用作自热膜,在膜蒸馏元件的水/汽界面处直接加热高盐度盐水,实现接近100%的高单级回收率,远远超过标准膜蒸馏回收极限。