Thermoelectric-Field-EnabledSalt-Resistant InterfacialEvaporation for Sustainable Water Purification
Artikel i vetenskaplig tidskrift, 2026

Solar-driven interfacial evaporation offers a promising route for decentralized water purification, yet its practical deployment is fundamentally limited by salt accumulation under high salinity and prolonged operation. Here, we report a thermoelectric-responsive evaporator that integrates photothermal localization, vertical temperature-gradient engineering, and redox-mediated thermoelectric conversion within a single, energy-autonomous architecture. By coupling a superhydrophobic photothermal top layer with a Fe(CN)6 4-/3- doped hydrogel bottom, a stable temperature gradient under solar irradiation generates a thermally induced interfacial electric field without external bias. This electric field simultaneously elevates the nucleation energy barrier for salt crystallization and dynamically repels salt nuclei from the evaporation surface via negative dielectrophoretic forces, even under highly saline conditions. As a result, the evaporator maintains a high evaporation rate of 2.5 kg m-2 h-1 with only a 6.9% performance loss at 10 wt % NaCl, far exceeding conventional photothermal systems. Long-term outdoor tests demonstrate stable operation over 20 days without salt fouling or material degradation, while techno-economic analysis yields a levelized cost of water of similar to 1-3 US$ m-3, competitive with small-scale solar desalination technologies. This work establishes thermoelectric field engineering as a general and scalable strategy to overcome salt accumulation, bridging the gap between laboratory-scale photothermal evaporation and real-world environmental water treatment.

salt-resisting

brine evaporation

water transport

thermal-responseelectric field

Författare

Meilan Pan

Nankai University

Jiaming Hu

Nankai University

Kefan Shi

Zhejiang University of Technology

Qiancheng Xia

Nanjing University

Liangtao Pu

Changzhou University

Jia Wei Chew

Chalmers, Kemi och kemiteknik, Kemi och biokemi

Guandao Gao

Nanjing University

Environmental Science & Technology

0013-936X (ISSN) 1520-5851 (eISSN)

Vol. 60 32 22943-22953

Ämneskategorier (SSIF 2025)

Den kondenserade materiens fysik

Energiteknik

DOI

10.1021/acs.est.6c02922

PubMed

42611455

Mer information

Senast uppdaterat

2026-09-04