High-performance self-desalination powered by triboelectric–electromagnetic hybrid nanogenerator

Jinhong Dai, Xin Xia, Dian Zhang, Shaoshuai He, Dong Wan, Fuming Chen*, Yunlong Zi*

*Corresponding author for this work

Research output: Contribution to journalJournal Articlepeer-review

15 Citations (Scopus)

Abstract

Freshwater is an essential resource in today's world, and how to produce freshwater with low or even zero power consumption is a major challenge. Here, a desalination system powered by a triboelectric–electromagnetic hybrid nanogenerator (TEHG) is presented, which can utilize the water's own energy to remove the salt ions from itself, demonstrating a new concept of “self-desalination”. At a relatively low rotation speed of 150 rpm, the system can dilute NaCl brine from 4000 ppm to 145 ppm with a high salt removal rate of 147.1 μg cm−2 min−1 and a freshwater productivity of up to 31.1 L m−2 h−1. The actual seawater can also be treated with a total ion removal efficiency of 99.6 % and a freshwater productivity of 2.7 L m−2 h−1, which is superior to other renewable-energy-powered desalination systems. More importantly, fully self-powered desalination process can be realized by manual cranking and hydrokinetic energy impact, both of which are capable of treating 1000 ppm salt feed to the drinking water level. The TEHG-powered desalination system not only provides excellent desalination performance but also addresses the challenges of power consumption and limited capacity, which offers a completely new paradigm of “self-desalination”.

Original languageEnglish
Article number121185
JournalWater Research
Volume252
DOIs
Publication statusPublished - 15 Mar 2024

Bibliographical note

Publisher Copyright:
© 2024

Keywords

  • Freshwater
  • Hydrokinetic energy
  • Self-desalination
  • Self-powered
  • Triboelectric–electromagnetic hybrid nanogenerator

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