首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Insights into the molecular transformation in the dissolved organic compounds of agro-waste-hydrochars by microbial-aging using electrospray ionization Fourier transform ion cyclotron resonance mass spectrometry
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Insights into the molecular transformation in the dissolved organic compounds of agro-waste-hydrochars by microbial-aging using electrospray ionization Fourier transform ion cyclotron resonance mass spectrometry

机译:使用电喷雾电离傅里叶变换离子回旋谐振质谱法通过微生物 - 老化探讨溶解的有机化合物中的溶解有机化合物的分子转化。

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摘要

Hydrochars-based dissolved organic matters (DOM) are easily available to organisms and thus have important influence on the biota once applying hydrochars as environment amendment. Thus, positive modifications on molecular composition of DOM is indispensable before hydrochars application. In this study, the impacts of microbial-aging by anaerobic fermentation on DOM of agro-waste-hydrochars was systematically assessed. Results revealed that microbial-aging caused lower DOM release but higher DOM molecular diversity. Moreover, microbial-aging resulted in the production of more biodegradable compounds, including lipids and proteins, and reduced the aromaticity of DOM. The highly oxygenated molecules (O/C > 0.6) were shifted into lower-order ones in the hydrochars-based DOM, suggesting the transformation of hydrophilic compounds into hydrophobic ones. Additionally, microbial-aging promoted the degradation of phenols by 99.0-98.9%, phenolic acids 37.8-73.5%, and polycyclic aromatic hydrocarbons by 83.4-90.4% in hydrochar-based DOM. Overall, this study demonstrates that microbial-aging changes the molecular characteristics of hydrochars-based DOM in a positive manner.
机译:以水蜡质为基础的溶解有机物(DOM)很容易被生物利用,因此一旦将水蜡质用作环境改良剂,就会对生物群产生重要影响。因此,在使用水力压裂之前,对DOM的分子组成进行积极的修改是必不可少的。在这项研究中,系统地评估了厌氧发酵微生物老化对农业废弃物水煤浆DOM的影响。结果表明,微生物老化导致DOM释放降低,但DOM分子多样性增加。此外,微生物老化导致产生更多可生物降解的化合物,包括脂质和蛋白质,并降低DOM的芳香性。在以水为基础的DOM中,高含氧分子(O/C>0.6)转变为低阶分子,表明亲水性化合物转变为疏水性化合物。此外,微生物老化促进了碳氢化合物DOM中苯酚的降解99.0-98.9%,酚酸的降解37.8-73.5%,多环芳烃的降解83.4-90.4%。总的来说,这项研究表明,微生物老化以积极的方式改变了基于水煤的DOM的分子特征。

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