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Nutrient supply enhanced wheat residue-carbon mineralization, microbial growth, and microbial carbon-use efficiency when residues were supplied at high rate in contrasting soils
被引:80
作者:
Fang, Yunying
[1
]
Singh, Bhupinder Pal
[1
]
Collins, Damian
[1
]
Li, Bingzhi
[2
]
Zhu, Jiang
[2
]
Tavakkoli, Ehsan
[3
]
机构:
[1] Elizabeth Macarthur Agr Inst, NSW Dept Primary Ind, Menangle, NSW 2568, Australia
[2] Shanghai Acad Environm Sci, Inst Wastes & Soil Environm, Shanghai 200233, Peoples R China
[3] Wagga Wagga Agr Inst, NSW Dept Primary Ind, Wagga Wagga, NSW 2650, Australia
关键词:
Microbial biomass;
Metabolic quotient (qCO(2));
Stoichiometry;
Microbial efficiency;
Clay mineral;
MACROMOLECULAR ORGANIC COMPOSITION;
AGRICULTURAL MANAGEMENT-PRACTICES;
AGGREGATE STABILITY;
COMMUNITY STRUCTURE;
ENZYME-ACTIVITIES;
BACTERIAL-GROWTH;
PLANT RESIDUES;
NITROGEN;
MATTER;
LITTER;
D O I:
10.1016/j.soilbio.2018.09.003
中图分类号:
S15 [土壤学];
学科分类号:
0903 ;
090301 ;
摘要:
Crop residue is a source of energy and nutrients for microbial growth, and can be converted into soil organic matter (SOM). However, there are still knowledge gaps on how the interaction of crop residue and supplementary nutrients (nitrogen, phosphorus and sulfur) influence the fate of residue in microbial biomass carbon (MBC) and microbial use efficiency. Here, we quantified the carbon (C) mineralization of wheat residue (delta C-13 494 parts per thousand) and microbial C use efficiency at ecosystem scale (CUEE) with two levels of the residue (6.7 and 20.0 g kg(-1) soil) and three levels of nutrients in Luvisol and Vertisol under a controlled laboratory condition (22 degrees C). Between 48 and 61% of residue-C was mineralized over 245 days. The residue CUEE was similar across the two levels of the residue on day 3 (Le., 0.29-0.40 in the Luvisol and 0.41-0.50 in the Vertisol) and then decreased over time, likely because of greater increase in cumulative total respiration and microbial turnover, relative to microbial growth. The residue CUEE was 20-55% lower in the high-residue, compared with (cf.) low residue, input after day 10, which may have resulted from the greater loss of C via overflow respiration (microbial respiration without the production of energy) and turnover of high MBC. Narrowing of the C-nutrient imbalance increased residue-C mineralization, residue-derived MBC, and residue CUEE only under the high residue input scenario where nutrients were possibly a limiting factor for microbial growth. Consequently, the results indicate a higher efficiency of SOM formation from returning of residue to soils under (i) low-residue (cf. high-residue) with or without nutrients, and (ii) high-residue with nutrient inputs (cf. no nutrient). The findings of the integrated residue nutrient management on dynamics of residue-derived MBC and residue CUEE can be used to improve predictive performance of the models on specific soil functions such as SOM storage in agroecosystems.
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页码:168 / 178
页数:11
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