Ailin Li , Mantang He , Maorong Zheng , Han Liu , Ye Liu , Huijie Liu , Jianyong Yu , Liming Wang , Xiaohong Qin
{"title":"Bioinspired multi-scale core-spun yarn-based solar evaporator for ultra-efficient and durable high-salinity brine desalination","authors":"Ailin Li , Mantang He , Maorong Zheng , Han Liu , Ye Liu , Huijie Liu , Jianyong Yu , Liming Wang , Xiaohong Qin","doi":"10.1016/j.fmre.2023.09.006","DOIUrl":null,"url":null,"abstract":"<div><div>Solar-driven interfacial desalination has been considered a promising and green technology for relieving worldwide water shortage because of its zero carbon emission. However, salt accumulation during evaporation results in a significant reduction in solar evaporation performance and sustained service life. High-performance and long-term salt-rejecting solar evaporators are urgently desirable. Inspired by the rapid water transfer driven by leaf transpiration and the capillary pressure in woody plants, we developed electrospun polyacrylonitrile @carbon nanotubes nanofiber/cotton core-spun yarn (PCCS yarn) based solar evaporator enabled by the multi-branch microchannels and sub-microchannels for ultra-efficient and durable high-salinity brine desalination. The optimal PCCS yarn-based solar evaporator exhibits a record-high evaporation rate of 3.46 kg m<sup>−2</sup>h<sup>−1</sup> under one sun illumination among 2D evaporators. Meanwhile, an excellent and stable brine desalination rate of ∼2.75 kg m<sup>−2</sup> h<sup>−1</sup> for 100 h continuous solar irradiation is achieved even in 20wt% NaCl solution. The above results are attributed to the massive micro evaporation surfaces formed between nanofibers, rapid water replenishment in the radius direction, and orientational fast water transport by Laplace pressure along and across the PCCS yarn. In addition, the continuous preparation of the core-spun yarn by the conjugated electrospinning technology and the complete fabric production process in the textile industry make it possible for the practical application of the PCCS yarn-based solar evaporator. This work promotes the development of high-performance, long-term and scalable solar desalination devices.</div></div>","PeriodicalId":34602,"journal":{"name":"Fundamental Research","volume":"5 3","pages":"Pages 1144-1152"},"PeriodicalIF":6.2000,"publicationDate":"2025-05-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":null,"platform":"Semanticscholar","paperid":null,"PeriodicalName":"Fundamental Research","FirstCategoryId":"1085","ListUrlMain":"https://www.sciencedirect.com/science/article/pii/S2667325823002947","RegionNum":3,"RegionCategory":"综合性期刊","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q1","JCRName":"Multidisciplinary","Score":null,"Total":0}
引用次数: 0
Abstract
Solar-driven interfacial desalination has been considered a promising and green technology for relieving worldwide water shortage because of its zero carbon emission. However, salt accumulation during evaporation results in a significant reduction in solar evaporation performance and sustained service life. High-performance and long-term salt-rejecting solar evaporators are urgently desirable. Inspired by the rapid water transfer driven by leaf transpiration and the capillary pressure in woody plants, we developed electrospun polyacrylonitrile @carbon nanotubes nanofiber/cotton core-spun yarn (PCCS yarn) based solar evaporator enabled by the multi-branch microchannels and sub-microchannels for ultra-efficient and durable high-salinity brine desalination. The optimal PCCS yarn-based solar evaporator exhibits a record-high evaporation rate of 3.46 kg m−2h−1 under one sun illumination among 2D evaporators. Meanwhile, an excellent and stable brine desalination rate of ∼2.75 kg m−2 h−1 for 100 h continuous solar irradiation is achieved even in 20wt% NaCl solution. The above results are attributed to the massive micro evaporation surfaces formed between nanofibers, rapid water replenishment in the radius direction, and orientational fast water transport by Laplace pressure along and across the PCCS yarn. In addition, the continuous preparation of the core-spun yarn by the conjugated electrospinning technology and the complete fabric production process in the textile industry make it possible for the practical application of the PCCS yarn-based solar evaporator. This work promotes the development of high-performance, long-term and scalable solar desalination devices.
太阳能驱动的界面海水淡化因其零碳排放而被认为是缓解全球水资源短缺的一种有前途的绿色技术。然而,蒸发过程中的盐积累导致太阳能蒸发性能和持续使用寿命的显著降低。高性能、长效防盐的太阳能蒸发器是迫切需要的。受木本植物叶片蒸腾作用和毛细压力驱动的快速水分传递特性的启发,我们开发了基于聚丙烯腈@碳纳米管纳米纤维/棉芯纱(PCCS纱)的太阳能蒸发器,该蒸发器采用多支路微通道和亚微通道实现了超高效、持久的高盐度盐水淡化。最佳的PCCS纱线太阳能蒸发器在一个太阳光照下的蒸发速率达到了创纪录的3.46 kg m−2h−1。同时,即使在20wt% NaCl溶液中,在100 h的连续太阳照射下,也能获得优良而稳定的盐水脱盐速率,为~ 2.75 kg m−2 h−1。上述结果归因于纳米纤维之间形成了大量的微蒸发面,在半径方向上快速补水,以及在PCCS纱线沿和跨方向的拉普拉斯压力下定向快速输水。此外,共轭静电纺丝技术连续制备包芯纱和纺织工业中完整的织物生产工艺,为PCCS纱基太阳能蒸发器的实际应用提供了可能。这项工作促进了高性能、长效和可扩展的太阳能海水淡化装置的发展。