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材料导报  2022, Vol. 36 Issue (7): 20060202-6    https://doi.org/10.11896/cldb.20060202
  无机非金属及其复合材料 |
生物炭对土壤酶活性影响的机理研究进展
李博文1, 刘洋1, 李宗霖1, 齐佳敏1, 谭聪1, 何莹1, 仇浩2
1 昆明理工大学环境科学与工程学院,云南省土壤固碳与污染控制重点实验室,昆明 650500
2 上海交通大学环境科学与工程学院,上海 200240
Research Progress on the Mechanism of Biochar's Impact on Soil Enzyme
LI Bowen1, LIU Yang1, LI Zonglin1, QI Jiamin1, TAN Cong1, HE Ying1, QIU Hao2
1 Provincial Key Laboratory of Soil Carbon Sequestration and Pollution Control, Faculty of Environmental Science and Engineering, Kunming University of Science and Technology, Kunming 650500, China
2 School of Environmental Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China
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摘要 生物炭具有优良的理化性质,常被用来提高土壤肥力,解决越发严重的土壤退化问题。然而,现有的大多数研究往往忽略了生物炭的添加对土壤酶活性的影响,这严重妨碍了对生物炭作用下土壤肥力变化及生态系统健康状况的准确评估。因此,本文就生物炭对各类土壤酶的作用及其机理展开了系统的讨论,重点关注生物炭的溶出物质(如(重)金属、溶解性有机质、多环芳烃等)及颗粒本身(如表面官能团、环境持久性自由基等)与土壤酶的直接作用,并剖析了生物炭通过作用于土壤微生物而对土壤酶活性影响的机制,从而提出正确认识生物炭存在的环境风险并对其进行系统评估,以指导其在生产实践中的安全应用。
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李博文
刘洋
李宗霖
齐佳敏
谭聪
何莹
仇浩
关键词:  生物炭  土壤酶活性  溶出物质  表面官能团  环境持久性自由基    
Abstract: Biochar, with excellent physical and chemical properties, has been often applied to improve soil fertility and to solve the increasingly serious problem of soil degradation. However, most of the existing studies often ignore the effect of the added biochar on soil enzyme activities, which seriously hinders the accurate assessment for changes in soil fertility and ecosystem health under the action of biochar. Therefore, this paper systematically summarized the effect and underlying mechanisms of biochar on different soil enzymes, with a focus on the direct interactions of soil enzymes with dissolved substances of biochar (such as (heavy) metals, dissolved organic matter, polycyclic aromatic hydrocarbons, etc.), or with biochar particles (such as surface functional groups, environmental persistent free radicals, etc.). This paper also analyzed the effect and underlying mechanisms of biochar on soil microorganisms and their secreted enzymes. Therefore, it is suggested that a comprehensive understanding of the environmental risks of biochar and a systematic evaluation will be helpful to guide the safe production and application of biochar.
Key words:  biochar    soil enzyme activity    soluble substances    surface functional groups    environmentally persistent free radicals
发布日期:  2022-04-07
ZTFLH:  X53  
基金资助: 国家自然科学基金(41967039;41703111);云南省万人计划青年拔尖专项(YNWR-QNBJ-2019-065);云南省基础研究计划优秀青年项目(202101AW070028);云南省基础研究计划(202001AT070042);昆明理工大学创新训练项目(202010674057)
通讯作者:  minipig6@163.com   
作者简介:  李博文,2018年6月毕业于河南师范大学,获得工学学士学位。现为昆明理工大学环境科学与工程学院硕士研究生,在刘洋副教授的指导下进行研究。目前主要从事生物炭与土壤磷酸酶的相互作用及其效应的研究。
刘洋,昆明理工大学环境科学与工程学院副教授,硕士研究生导师。2009年7月本科毕业于中国农业大学水利与土木工程学院农业建筑环境与能源工程系,2011年9月取得中国农业大学水利与土木工程学院农业建筑环境与能源工程系硕士学位,2015年在荷兰莱顿大学理学院环境科学系获得博士学位。2017年8月至今在昆明理工大学环境科学与工程学院环境科学系工作,2019年入选云南省“万人计划”。主要从事污染物生态毒性效应评价与预测、混合污染物毒性作用机理、纳米材料的环境行为及健康风险评价、天然有机质与污染物的相互作用、生物炭中自由基的生物效应方向的研究。近年来在环境科学领域发表文章近20篇,包括Environmental Science & TechnologyEnvironmental PollutionWater ResearchChemosphereFrontiers of Environmental Science & Engineering等。
引用本文:    
李博文, 刘洋, 李宗霖, 齐佳敏, 谭聪, 何莹, 仇浩. 生物炭对土壤酶活性影响的机理研究进展[J]. 材料导报, 2022, 36(7): 20060202-6.
LI Bowen, LIU Yang, LI Zonglin, QI Jiamin, TAN Cong, HE Ying, QIU Hao. Research Progress on the Mechanism of Biochar's Impact on Soil Enzyme. Materials Reports, 2022, 36(7): 20060202-6.
链接本文:  
http://www.mater-rep.com/CN/10.11896/cldb.20060202  或          http://www.mater-rep.com/CN/Y2022/V36/I7/20060202
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