可扩展性
桥接(联网)
稳健性(进化)
催化作用
纳米技术
杠杆(统计)
材料科学
计算机科学
生化工程
系统工程
多尺度建模
工艺工程
水准点(测量)
化学反应工程
金属有机骨架
量子点
反应堆设计
分布式计算
催化效率
多相催化
高效能源利用
工作(物理)
沸石咪唑盐骨架
科技与社会
离解(化学)
作者
Xing Xu,Z. Xu,Zhaokai Gao,Tuo Wang,Mingming Ta,Feilong Zhang,Qian Li,Yanan Shang,Zhongfei Ren,Longlong Geng,Chao Bai,Yanzhong Zhen
标识
DOI:10.1002/adfm.202523688
摘要
Abstract Homogeneous ozone‐based advanced oxidation processes (AOPs) enable pollutant degradation through direct oxidation or radical‐based pathways, inherent limitations persist particularly ozone's low aqueous solubility and intensive energy demands. This challenge is being redefined through catalyst engineering, where nanoscale systems demonstrate quantum‐enhanced efficiency governed by size‐dependent activation mechanisms. Atomic‐level catalysts leverage quantum confinement effects to optimize ozone activation pathways, whereas micron‐scale architectures balance catalytic activity with structural robustness for industrial scalability. Current research gaps center on the absence of reviews correlating size‐regulated catalytic architectures with performances/mechanisms in ozonation processes. This review systematically investigates how catalytic site dimensions govern reaction thermodynamics, analyzing electronic transfer kinetics and defect‐mediated dissociation mechanisms to establish structure–activity relationships. Through reactor‐scale case studies (catalytic columns/membranes), it evaluates technological scalability while incorporating techno‐economic and life‐cycle assessments to benchmark environmental/economic viability. The analysis advocates interdisciplinary convergence, merging computational catalysis, operando characterization, and systems engineering to address fundamental questions about size‐dependent active site evolution and practical challenges in real‐world implementation. By bridging molecular‐level insights with macroscopic reactor design principles, this work charts pathways for developing tunable, energy‐efficient ozonation platforms tailored to emerging contaminant landscapes.
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