Jiang Gong   研究员(自然科学)

截止2025年1月23日,累计发表SCI论文158篇。其中第一作者/通讯作者89篇,包括国际一流期刊Progress in Polymer Science(影响因子26),Advanced Materials(影响因子27.4),Advanced Energy Materials (影响因子24.4),Angewandte Chemie International Edition(影响因子16.1),Chem(影响因子19.1),Applied Catalysis B: Environmental(影响因子20.2,4篇),Chemical Engineering Journal(影响因子13.3,11篇),Jour...Detials

Hofmeister effect mediated hydrogel evaporator for simultaneous solar evaporation and thermoelectric power generation

Release time:2023-06-15  Hits:

  • Indexed by:Journal paper
  • First Author:Jiaxin Ren
  • Correspondence Author:Jiang Gong,Ran Niu
  • Co-author:Ling Chen,Jinping Qu
  • Journal:Chemical Engineering Journal
  • Included Journals:SCI
  • Discipline:Engineering
  • First-Level Discipline:Material Science and Engineering
  • Document Type:J
  • Volume:485
  • Page Number:141511
  • Date of Publication:2023-02-15
  • Abstract:Porous hydrogel with intrinsic hydrophilicity and reduced vaporization enthalpy has emerged as a rising star for solar-driven interfacial water distillation and desalination. However, the development of facile, general and scalable approaches capable of simultaneously engineering the molecular and microporous structure is urgently needed for hydrogel evaporators but a daunting challenge. Herein, a freeze-soak method based on Hofmeister effect is used to fabricate porous hydrogel evaporators with tunable molecular and microporous structure in large scale. The interconnected porous structure endows the hydrogel with adjustable water transport rate and exceptional desalination performance, while the changeable crystallinity allows the hydrogel with tunable water states. Benefiting from these properties, the hydrogel shows a high evaporation rate of 3.52 kg m-2h−1 with the conversion efficiency of 97.2 % under 1 Sun irradiation. Additionally, the integration of the hydrogel evaporator with a thermoelectric module enables the low-grade heat to electricity conversion. A power density of 0.65 W m−2 is achieved under 1 Sun irradiation. It is anticipated that the Hofmeister effect-mediated porous hydrogel without the assistance of freeze-drying will lay a solid foundation for the industrial fabrication of hydrogel for energy conversion and storage, environmental remediation, etc.
  • Links to published journals:https://www.sciencedirect.com/science/article/pii/S1385894723002425?via%3Dihub