冻融竹生物炭对镉-微塑料污染土壤的调控差异及机制

Regulation differences and mechanisms of freeze-thaw-treated bamboo biochar in cadmium-microplastic co-contaminated soil

  • 摘要: 土壤重金属-微塑料复合污染威胁食品安全与人类健康,竹生物炭具有潜在修复价值,但冻融处理是否改变其在镉(Cd)-微塑料复合污染土壤中的调控表现仍不清楚。以青椒盆栽为载体,采用双因素完全随机实验设计,设置未处理竹生物炭(BC)和冻融竹生物炭(aBC)两个生物炭类型,并构建未加污染物对照(CK)、聚乙烯(PE)、聚乳酸(PLA)、Cd、PE+Cd和PLA+Cd六种污染物处理,比较BC和aBC的调控差异。结果表明,冻融处理未显著改变竹生物炭C、H、N含量,但使表观O/C由0.188升至0.200,C—O相关信号增强,表面裂隙增多。与BC相比,aBC未显著提高土壤pH,但在Cd、PE+Cd和PLA+Cd处理中显著降低可提取Cd(extractable Cd,ExCd),降幅为52.6%~69.7%(P<0.05),并促进过氧化氢酶和多酚氧化酶活性恢复。aBC在上述含Cd处理中显著降低整株Cd含量,降幅为20.0%~25.7%(P<0.05),Cd和PE+Cd处理中青椒生长改善较明显,而PLA+Cd处理对植株抑制最强,株高仅为7~13 cm,果实产量为0。真菌群落对生物炭类型和污染背景的响应比细菌更敏感。总体来看,冻融处理主要通过改变竹生物炭表面界面特征,影响土壤Cd活性、土壤酶活性、植株和微生物的响应,且其调控作用在PE和PLA背景下表现出分异。本研究可为土壤Cd-微塑料复合污染的修复实践提供理论参考与技术借鉴。

     

    Abstract: Soil heavy metal-microplastic co-contamination threatens food safety and human health, and bamboo biochar has potential value for soil remediation. However, whether freeze-thaw treatment alters the regulatory performance of bamboo biochar in cadmium (Cd)-microplastic co-contaminated soil remains unclear. In this study, a pot experiment with pepper was conducted using a two-factor completely randomized design. Two biochar types, untreated bamboo biochar (BC) and freeze-thaw-treated bamboo biochar (aBC), were used, and six pollutant treatments were established: no-pollutant control (CK), polyethylene (PE), polylactic acid (PLA), Cd, PE+Cd, and PLA+Cd. The regulatory differences between BC and aBC were then compared. The results showed that freeze-thaw treatment did not significantly change the C, H, and N contents of bamboo biochar, but increased the apparent O/C ratio from 0.188 to 0.200, enhanced C—O-related signals, and increased surface cracks. Compared with BC, aBC did not significantly increase soil pH, but significantly reduced extractable Cd (ExCd) in the Cd, PE+Cd, and PLA+Cd treatments, with reductions of 52.6%-69.7% (P<0.05), and promoted the recovery of catalase and polyphenol oxidase activities. aBC also significantly reduced whole-plant Cd concentration in these Cd-containing treatments, with reductions of 20.0%-25.7% (P<0.05). Pepper growth was more clearly improved in the Cd and PE+Cd treatments, whereas plant growth was most strongly inhibited under PLA+Cd, with plant height reaching only 7-13 cm and fruit yield being zero. Fungal communities were more sensitive than bacterial communities to biochar type and pollution scenario. Overall, freeze-thaw treatment mainly affected soil Cd activity, soil enzyme activities, and plant and microbial responses by changing the surface interfacial properties of bamboo biochar, and its regulatory effects differed between the PE and PLA backgrounds. This study provides theoretical reference and technical support for the remediation of soil Cd-microplastic co-contamination.

     

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