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Mechanism Analysis and Precise Regulation Strategies of Non-Thermal Effects and Synergistic Effects in Microwave Disinfection

delete2026-07-20
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PRE
AI
Y
Ying-Xiang Fu
J
Jun-Jie Wang
H
Hao Wu
Z
Zhi-Cheng Pan *
W
Wei Hu
Y
Ye Du *
DOI:10.1007/s40726-026-00420-xdelete
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Abstract

Abstract

En 中文
Microwave disinfection technology is rapidly evolving from traditional thermal treatment to controllable physical field-driven methods. Its disinfection effects in water, solid, and air media can rival or even surpass those of chemical disinfection. By re-examining the long-standing debate around thermal and non-thermal effects, this review systematically summarizes the progress in microwave disinfection research. It aims to provide a theoretical basis and forward-looking directions for the development of precise, efficient, and energy-saving microwave disinfection strategies. This review addresses the ambiguity between thermal and non-thermal effects in microwave disinfection, as well as the lack of quantification regarding their synergistic mechanisms, and proposes a comprehensive conceptual framework. Thermal effects achieve rapid inactivation through volumetric heating of dielectric materials; efficient disinfection can be attained within one minute when temperatures reach or exceed 80°C. When electric field strength exceeds 1.5 kV·m⁻¹ and specific absorption rate (SAR) surpasses 5 kW·kg⁻¹, non-thermal effects can act independently of overall temperature, inducing microbial inactivation via electroporation and intracellular reactive oxygen species generation. Compared to a thermal effect baseline of 0.7-1.4 log reduction, non-thermal effects contribute an additional 1.1-1.8 log inactivation, increasing total inactivation efficiency by 2 to 4 times. Under typical low ionic strength aqueous conditions, the transition between dominant thermal and non-thermal effects is determined by a power density threshold of approximately 60 W·L⁻¹. In microwave-assisted advanced oxidation processes (MW-AOPs), confining radical reactions to the catalyst surface reduces energy consumption to 0.08 kWh·log⁻¹. Furthermore, a classification strategy based on microbial structure has been established: Gram-negative (G⁻) bacteria with high-dielectric-loss outer membranes are best suited for continuous-wave treatment, whereas Gram-positive (G⁺) bacteria require pulsed microwave modulation to penetrate their thick peptidoglycan barrier. This review provides a scientific foundation for the rational design of efficient, low-energy microwave disinfection systems.
Keywords:
Microwave disinfection
Thermal effect
Non-thermal effect disinfection mechanism
Synergistic effect

Journal

C
Current Pollution Reports
IF:
8.1
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Citations:
2.8K

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college of chemistry and environmental engineering
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C
College of Architecture and Environment
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D
department of civil and environmental engineering
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