Distribution Hotspots,Formation Mechanisms, and EcologicalEffects of Reactive Oxygen Species in Soil and Sediment: A CriticalReview

环境化学 活性氧 化学 单线态氧 羟基自由基 生物炭 土壤有机质 污染物 背景(考古学) 环境科学 生态学 环境修复 土壤化学 生物量(生态学) 过氧化氢 土壤污染 生物地球化学循环 固碳 有机质 生态系统 土壤生物学 营养物 土壤生态学 沉积物 超氧化物 生物扰动
作者
Jiayi Yao (3391724),Haowei Wang (821958),Jing Fang (170284),Shengdao Shan (4260403),Stephen D. Joseph (2331655),Lukas van Zwieten (14721244),Kecheng Zhu (3377216),Dingjiang Chen (1803046),Hanzhong Jia (1799818)
出处
期刊:La Trobe University - OPAL (Open@LaTrobe)
标识
DOI:10.1021/acs.est.5c00581.s001
摘要

Reactive oxygen species (ROS), including superoxide radical (O2•–), hydrogen peroxide (H2O2), hydroxyl radical (OH), and singlet oxygen (1O2), are commonly present in soil and sediment, playing a crucial role in the nutrient biogeochemical cycle, pollutant transformation, and microbial ecology. Previous reviews mainly emphasized ROS toxicity and Fenton chemistry-related reactions, neglecting a comprehensive understanding of ROS distribution and hotspots, formation mechanisms, and ecological effects. Here, the most advanced in situ and ex situ detection methods of ROS in soil and sediment are first summarized to address these gaps. ROS hotspots are identified as active microinterfaces and oxic–anoxic fluctuation zones by graphing the distribution of ROS in soil and sediment. Second, ROS formation processes and mechanisms are outlined, which involve natural organic matter (NOM) and biochar (acting as electron shuttle, geobattery, geoconductor, and photosensitizer), transition metals (mainly via Fenton and Fenton-like reactions), and microbes (producing extracellular ROS and mediating NOM decomposition or metal oxides reduction). Further, as for the ecological effects of ROS, they impact the microbial community, nutrient cycle, and the transformation of organic pollutants and multivalence heavy metals. Finally, we call for more future research that focuses on developing rapid and in situ ROS detection techniques, elucidating the interactive ROS formation mechanisms by trace environmental components, analyzing ecological consequences in ROS hotspots, and practically applying ROS in soil and sediment. A comprehensive understanding of the ROS formation process in soil and sediment is crucial for the study of soil carbon sequestration and natural remediation processes in the context of global green and low-carbon development.
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