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ACS Applied Polymer Materials· 2026Q1

Membrane-Enabled Passive Evaporation-Diffusion Cooling for Mitigating the Water-Energy Trade-Off in Recirculating Cooling Systems

Xiaowang Zhang, Yuping Chen, Qiwen Gan, Yuhao Liu et al.

Short summary

A novel polytetrafluoroethylene nanofibrous porous membrane (PTFE NPM) passively enhances evaporation-diffusion cooling in recirculating cooling systems, increasing the cooling rate by 10.7% (0.651 °C s–1 vs. 0.588 °C s–1) and reducing water consumption.

AI-generated from the title and abstract; the full text is not read.

Key points

  • Polytetrafluoroethylene nanofibrous porous membranes (PTFE NPMs) were integrated into recirculating cooling systems (RCSs).
  • The membranes exhibit superhydrophobicity, antiwetting stability, and efficient vapor permeability, promoting passive evaporation-diffusion cooling.
  • The PTFE-NPM system increased the cooling rate by 10.7% (0.651 °C s–1 vs. 0.588 °C s–1) in a 300s test.
  • The membranes act as selective barriers, maintaining circulating-water purity and reducing water consumption.

AI-generated from the title and abstract; the full text is not read.

Abstract

Abstract Recirculating cooling water systems (RCSs) are essential for industrial thermal management, yet their reliance on continuous water circulation and evaporation-induced makeup water imposes substantial water and energy burdens. Here, we report a passive interfacial cooling strategy by integrating polytetrafluoroethylene nanofibrous, porous membranes (PTFE NPMs) into the cooling unit of an RCS. Owing to the intrinsically low surface energy of PTFE and the interconnected micro/nanoporous fibrous architecture, the membranes exhibit robust superhydrophobicity, antiwetting stability, and efficient vapor permeability. This hierarchical interface promotes rapid outward diffusion of water vapor from hot water while suppressing liquid-water retention and penetration, thereby accelerating evaporation-diffusion-mediated heat dissipation without external energy input. Meanwhile, the tortuous hydrophobic nanochannels function as selective mass-transfer barriers, enabling vapor escape while preventing the intrusion of droplets, particulates, and contaminants, which is beneficial for maintaining circulating-water purity and reducing water consumption. In a 300 s cooling test, a conventional RCS cooled a copper disk to 47.5 °C with an average cooling rate of 0.588 °C s–1, whereas the PTFE-NPM-integrated system reduced the temperature to 44.5 °C and increased the cooling rate to 0.651 °C s–1. This work demonstrates a membrane-enabled, energy-free cooling enhancement strategy for sustainable RCSs and provides a materials platform for water-saving industrial thermal management.

The authors' abstract, as published at the source. ACS Applied Polymer Materials, 2026 · DOI ↗

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Field: Renewable Energy, Sustainability and the Environment

Renewable Energy, Sustainability and the EnvironmentEnergy