生物炭
化学
尿素酶
环境化学
激进的
环境修复
水解
尿素
热解
有机化学
污染
生态学
生物
作者
Yang Liu,Qunying Dai,Xiuqi Jin,Xudong Dong,Juan Peng,Min Wu,Liang Ni,Bo Pan,Baoshan Xing
标识
DOI:10.1021/acs.est.8b00672
摘要
generation). Released heavy metals and polyaromatic hydrocarbons explained the 20% inhibition of urease activity in biochar supernatants (200 °C) but could not explain the 70% inhibition in particle systems (400 °C). The levels of protein carbonyl and nitrotyrosine, common oxidative damagers of urease, were high in particle systems but very low in biochar supernatants. The electron paramagnetic resonance signal intensity reached its highest level in the 400 °C biochar and decreased in the 500 °C biochar, possibly due to the decomposition of organic molecules. The observed inhibition of urease activity may be the result of oxidative reactions with free radicals on the biochar surface or oxidative reactions with reactive oxygen species promoted by free radicals. We suggest that these potential hazards be evaluated further to gauge the relevance of these findings to field conditions and to assist in the development of safe and sustainable application schemes for biochars.
科研通智能强力驱动
Strongly Powered by AbleSci AI