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首页> 外文期刊>European Journal of Soil Biology >Impact of total water potential and varying contribution of matric and osmotic potential on carbon mineralization in saline soils.
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Impact of total water potential and varying contribution of matric and osmotic potential on carbon mineralization in saline soils.

机译:总水势和基质和渗透势对盐渍土壤碳矿化的影响。

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摘要

In saline soils, microbial activity may be reduced by low matric (low water content) and low osmotic potential (presence of salts) but little is known about the impact of the relative contribution of matric and osmotic potential to water potential (sum of matric and osmotic potential) on microbial activity and biomass. A laboratory incubation experiment was conducted using a non-saline sandy loam; different osmotic potentials (-0.30 to -3.24 MPa) were achieved by adding different amounts of NaCl. After pre-incubation for 14 days, subsamples of these treatments were dried to achieve different contributions of matric potential (8-73%) and osmotic potential (27-92%) to water potential which ranged between -0.57 and -4.57 MPa. All treatments were amended with 20 g kg-1 pea residues to increase nutrient supply; carbon dioxide (CO2) emission was measured over 14 days. Microbial biomass C and K2SO4-extractable C were measured at the end of the experiment. Cumulative CO2-C (mg g-1 soil) was significantly (p<0.05) lower at water potential -4 MPa than at water potential -1.5 MPa. Above water potential -4 MPa, cumulative CO2-C significantly decreased with increasing percentage contribution of osmotic potential to water potential, particularly if the contribution of osmotic potential was >50%. In contrast, K2SO4-extractable C and microbial biomass C were little affected by water potential above -4 MPa. Only at water potential -4 MPa, cumulative CO2-C and microbial biomass C were affected by matric potential and its contribution to water potential; that is when the soils are very dry. Our results show that cumulative CO2-C was more sensitive to decreasing water potential or the contributions of osmotic and matric potential than microbial biomass C. This suggests that not only water potential but also the contribution of osmotic and matric potential should be taken into account to understand microbial activity and growth in saline soils.
机译:在盐渍土壤中,低基质(低水分含量)和低渗透势(盐分存在)可能会降低微生物活性,但人们对基质和渗透势相对贡献对水势的影响知之甚少(基质和水的总和)。渗透潜力)对微生物活性和生物量的影响。使用非盐质沙质壤土进行了实验室培养实验;通过添加不同量的NaCl,可以获得不同的渗透势(-0.30至-3.24 MPa)。预温育14天后,将这些处理的子样品干燥,以实现基质势(8-73%)和渗透势(27-92%)对水势的不同贡献,其范围在-0.57和-4.57 MPa之间。所有处理均用20 g kg -1 豌豆残渣修正以增加营养供应;测量了14天的二氧化碳(CO 2 )排放。在实验结束时测量了微生物生物量碳和K 2 SO 4 可提取的碳。在水势-4 MPa时,累积的CO 2 -C(mg g -1 土壤)显着(p <0.05)低于水势-1.5 MPa。高于水势-4 MPa时,随着渗透势对水势的贡献百分比的增加,特别是当渗透势的贡献> 50%时,累积的CO 2 -C显着降低。相比之下,K 2 SO 4 可提取的碳和微生物量碳几乎不受-4 MPa以上水势的影响。仅在水势为-4 MPa时,基质势及其对水势的影响才影响累积CO 2 -C和微生物量碳。那是当土壤非常干燥时。我们的结果表明,与微生物量C相比,累积的CO 2 -C对降低水势或渗透和基质势的贡献更为敏感。这表明,不仅水势,而且渗透势和渗透势的贡献为了了解盐渍土壤中的微生物活性和生长,应考虑基质的潜力。

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