Bai Xinyue, Huang Dandan, Chen Yuke, Shao Mingshuai, Wang Ning, Wang Qian, Xu Qiyong
Shenzhen Engineering Laboratory for Eco-efficient Recycled Materials, School of Environment and Energy, Peking University Shenzhen Graduate School, University Town, Xili, Nanshan District, Shenzhen, 518055, PR China.
School of Ecology, Sun Yat-sen University, Shenzhen, 518107, PR China.
Chemosphere. 2023 Dec;343:140279. doi: 10.1016/j.chemosphere.2023.140279. Epub 2023 Sep 25.
The ability of biochar to enhance the oxidation of methane (CH) in landfill cover soil by promoting the growth and activity of methane-oxidizing bacteria (MOB) has attracted significant attention. However, the optimal characteristics of digestate-derived biochar (DBC) for promoting the MOB community and CH removal performance remain unclear. This study examined how the CH oxidation capacity and respiratory metabolism of MOB life process are affected by the application of DBC compared with the most commonly used woody-derived biochar (WBC). The addition of both WBC and DBC enhanced CH oxidation, with DBC exhibiting a nearly twofold increase in cumulative CH oxidation mass (7.14 mg CH g) compared to WBC. The high ion-exchange capacity of DBC was found to be more favorable for the growth of Type I MOB, which have more efficient metabolic pathways for CH oxidation. Type I MOB which are abundant in DBC may prefer monovalent positive ions, while the charge-rich nature of DBC may also have hindered extracellular protein aggregation. The superiority of DBC in terms of CH oxidation thus highlights the underlying mechanisms of biochar-MOB interactions, offering potential biochar options for landfill cover soil.
生物炭通过促进甲烷氧化细菌(MOB)的生长和活性来增强垃圾填埋场覆盖土壤中甲烷(CH)氧化的能力已引起广泛关注。然而,源自沼渣的生物炭(DBC)促进MOB群落和CH去除性能的最佳特性仍不清楚。本研究考察了与最常用的木质源生物炭(WBC)相比,DBC的施用如何影响MOB生命过程的CH氧化能力和呼吸代谢。WBC和DBC的添加均增强了CH氧化,与WBC相比,DBC的累积CH氧化量增加了近两倍(7.14 mg CH g)。发现DBC的高离子交换能力更有利于I型MOB的生长,I型MOB具有更有效的CH氧化代谢途径。DBC中丰富的I型MOB可能更喜欢单价阳离子,而DBC富含电荷的性质也可能阻碍细胞外蛋白质聚集。DBC在CH氧化方面的优势凸显了生物炭与MOB相互作用的潜在机制,为垃圾填埋场覆盖土壤提供了潜在的生物炭选择。