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先进功能材料

水发电技术

增强界面蒸发

智能/仿生材料与结构

高性能能源器件

特种功能材料

 
 

增强界面蒸发

 

增强界面蒸发

常规蒸发、蒸馏过程比较低效,界面增强蒸发、蒸馏将革新传统液-汽转化过程,突破传统热蒸馏、海水淡化方式。课题组创新材料设计与制备,诱导水分子在微观界面的重新分布,开发了系列高效界面水蒸发材料,增强界面热利用和管理,有效降低能耗,大幅提升蒸发效率,实现了高效海水淡化、盐碱水纯化、污水净化、甚至空气中水汽的收集。同时,也设计了全新的界面蒸发蒸馏装置,实现了超节能的光热/电热水清洁及海水淡化装备系统,为水资源短缺问题提供了独特解决方案。

增强界面蒸发

1. Highly efficient solar vapour generation via hierarchically nanostructured gels, Nature Nanotechnology, 2018, 13, 489–495.

2. Highly efficient clean water production from contaminated air with a wide humidity range, Advanced Materials, 2020, 32 (6), 1905875.

3. Reduced graphene oxide-based spectrally selective absorber with an extremely low thermal emittance and high solar absorptance, Advanced Science, 2020, 1903125

4. Interface-enhanced distillation beyond tradition based on well-arranged graphene membrane. Sci. China-Mater. 2020, 63 (10), 1948–1956.

5. Plant leaves inspired sunlight-driven purifier for high-efficiency clean water production, Nature Communications, 2019, 10, 1512.

6. Direct solar steam generation system for clean water production, Energy Storage Materials, 2019, 18, 429–446. (Review)

7. Thermal Efficiency of Solar Steam Generation Approaching 100 % through Capillary Water Transport, Angew. Chem. Int. Ed., 2019,58(52): 19041–19046

8. High rate production of clean water based on the combined photo-electro-thermal effect of graphene architecture, Advanced Materials, 2018, 1706805.

9. Vertically Aligned Graphene Sheets Membrane for Highly Efficient Solar Thermal Generation of Clean Water", ACS Nano, 2017, 11, 5087–5093.


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