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Trapping of Micro Particles in Nanoplasmonic Optical Lattice
Published on: September 5, 2017
Light-Gated Thermal Domains in Nano-Lanterns: Confined Heat Hotspots Sparks Electron Localization for Water
Miao Fang1, Zhiyuan Ning1, He Guo2
1State Key Laboratory of Soil and Water Conservation and Desertification Control, College of Natural Resources and Environment, Northwest A&F University, Yangling, Shaanxi Province, 712100, P. R. China.
Abstract:
Peroxyacetic acid (PAA) oxidation technology receives widespread concerns for water purification with minimal secondary pollution. Conventional heat-driven PAA activation generally wastes energy during solution heating. In this study, "light-gated thermal domains" concept is developed in a hollow porous carbon nanosphere (HPCS), and the confined heat hotspots lead to a higher temperature (80 °C) in the internal space than in the solution (40 °C). This endows the HPCS with exceptional redox capacity, optical response, and electron transfer capability. The degradation efficiency of sulfadiazine in the HPCS+PAA catalytic system reached more than 98% within 90 min of irradiation, with a reaction rate constant 11 times higher than that in the non-confined system. The "light-gated thermal domains" induces electron localization and decreases PAA activation energy barriers. In contrast to the non-confined system dominated by the radical oxidation pathway, heat-confinement exhibits synergies between the radical and non-radical pathways, enabling rapid pollutant degradation. Zebrafish embryo experiments validated the pollutant detoxification capabilities of this system. This "light-gated thermal domains" ensures long-lasting robustness of PAA activation and paves a novel way for the development of sustainable catalytic water purification technologies.

