Biochar carbon dynamics in physically separated fractions and microbial use efficiency in contrasting soils under temperate pastures

被引:35
|
作者
Fang, Yunying [1 ]
Singh, Bhupinder Pal [1 ]
Luo, Yu [2 ]
Boersma, Mark [3 ]
Van Zwieten, Lukas [4 ]
机构
[1] Elizabeth Macarthur Agr Inst, NSW Dept Primary Ind, Menangle, NSW 2568, Australia
[2] Zhejiang Univ, Inst Soil & Water Resources & Environm Sci, Hangzhou 3100058, Zhejiang, Peoples R China
[3] Univ Tasmania, Tasmanian Inst Agr, Burnie, Tas 7320, Australia
[4] Wollongbar Primary Ind Inst, NSW Dept Primaty Ind, Wollongbar, NSW 2477, Australia
来源
关键词
Pyrogenic carbon; Carbon use efficiency; Light fraction; Heavy fraction; Mineralisation; Stabilisation; PYROGENIC ORGANIC-MATTER; BLACK CARBON; EXTRACTION METHOD; WHEAT-STRAW; BIOMASS; MINERALIZATION; STABILITY; NITROGEN; MECHANISMS; FATE;
D O I
10.1016/j.soilbio.2017.10.042
中图分类号
S15 [土壤学];
学科分类号
0903 ; 090301 ;
摘要
There is overwhelming evidence for the long-term persistence of biochar in soil. However, the partitioning of biochar into light and heavy carbon (C) fractions and microbial biomass C (MBC), and the dynamics of C use efficiency (CUEE: net incorporation of biochar into MBC per unit of biochar-C consumed, including microbial death and recycling of biochar-derived microbial metabolites) in planted soil systems are poorly understood. A C-13-labelled wood biochar (delta C-13: -36.7%o) was incorporated into topsoil (0-10 cm) in an Arenosol, Cambisol and Ferralsol under C-3 dominated temperate pastures (delta C-13:-25 to -27%o). The partitioning of biochar-C into the various soil C pools and CUEE were measured at 4, 8 and 12 months. The results showed that 8.6-28.2% of the biochar-C in the top soils was distributed to the heavy fraction (HF) within 4 months, which increased to 11.0-33.3% at 8 and 12 months. Biochar-C recovery in the HF was the highest in the Ferralsol (cf. Arenosol and Cambisol), possibly due to greater interaction of biochar and biochar-derived microbial metabolites with soil minerals. Biochar significantly increased MBC across the three soils. Biochar-derived MBC ranged from 22 to 93 mg C kg(-1) soil over time (Arenosol < Cambisol < Ferralsol), representing 11-20% of the total MBC pool. Biochar CUEE was 0.20-0.27 at 4 months, which decreased over time, possibly due to lowering of biochar-C availability to microbes. Further, although biochar-derived MBC was higher, biochar CUEE was lower in the Ferralsol (cf. Arenosol and Cambisol), likely supported by higher microbial respiration and turnover, and lower recycling of microbial metabolites via greater organo-mineral interaction. Here, the study advanced our understanding of key C cycling processes, such as CUEE and the temporal fate of biochar-derived C in an organomineral fraction with relevance for biochar sequestration in contrasting soils under planted field conditions.
引用
收藏
页码:399 / 409
页数:11
相关论文
共 50 条
  • [21] Growth explains microbial carbon use efficiency across soils differing in land use and geology
    Zheng, Qing
    Hu, Yuntao
    Zhang, Shasha
    Noll, Lisa
    Boeckle, Theresa
    Richter, Andreas
    Wanek, Wolfgang
    SOIL BIOLOGY & BIOCHEMISTRY, 2019, 128 : 45 - 55
  • [22] Evaluating carbon dynamics and microbial activity in arctic soils under warmer temperatures
    Oelbermann, Maren
    English, Michael
    Schiff, Sherry L.
    CANADIAN JOURNAL OF SOIL SCIENCE, 2008, 88 (01) : 31 - 44
  • [23] Controls and dynamics of biochar decomposition and soil microbial abundance, composition, and carbon use efficiency during long-term biochar-amended soil incubations
    Jiang, Xinyu
    Denef, Karolien
    Stewart, Catherine E.
    Cotrufo, M. Francesca
    BIOLOGY AND FERTILITY OF SOILS, 2016, 52 (01) : 1 - 14
  • [24] Controls and dynamics of biochar decomposition and soil microbial abundance, composition, and carbon use efficiency during long-term biochar-amended soil incubations
    Xinyu Jiang
    Karolien Denef
    Catherine E. Stewart
    M. Francesca Cotrufo
    Biology and Fertility of Soils, 2016, 52 : 1 - 14
  • [25] Relationships between P fractions and the microbial biomass in soils under different land use management
    Khan, Khalid Saifullah
    Joergensen, Rainer Georg
    GEODERMA, 2012, 173 : 274 - 281
  • [26] Biochar Application in Combination with Inorganic Nitrogen Improves Maize Grain Yield, Nitrogen Uptake, and Use Efficiency in Temperate Soils
    Omara, Peter
    Aula, Lawrence
    Oyebiyi, Fikayo B.
    Eickhoff, Elizabeth M.
    Carpenter, Jonathan
    Raun, William R.
    AGRONOMY-BASEL, 2020, 10 (09):
  • [27] Effects of Biochar Application on Soil Microbial Nutrient Limitations and Carbon Use Efficiency in Lou Soil
    Wang Q.
    Geng Z.-C.
    Xu C.-Y.
    Guo J.-Y.
    Li Q.-Q.
    Liu L.-L.
    Zhao H.-H.
    Du X.-G.
    Huanjing Kexue/Environmental Science, 2020, 41 (05): : 2425 - 2433
  • [28] Contrasting dynamics of polychlorinated biphenyl dissipation and fungal community composition in low and high organic carbon soils with biochar amendment
    Shengyan Huang
    Mingjuan Shan
    Junhui Chen
    Petri Penttinen
    Hua Qin
    Environmental Science and Pollution Research, 2018, 25 : 33432 - 33442
  • [29] Contrasting dynamics of polychlorinated biphenyl dissipation and fungal community composition in low and high organic carbon soils with biochar amendment
    Huang, Shengyan
    Shan, Mingjuan
    Chen, Junhui
    Penttinen, Petri
    Qin, Hua
    ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2018, 25 (33) : 33432 - 33442
  • [30] Dynamics of soil organic carbon and nitrogen associated with physically separated fractions in a grassland-cultivation sequence in the Qinghai-Tibetan plateau
    Shi, Xiao Ming
    Li, Xiao Gang
    Long, Rui Jun
    Singh, Bhupinder Pal
    Li, Zhuo Ting
    Li, Feng Min
    BIOLOGY AND FERTILITY OF SOILS, 2010, 46 (02) : 103 - 111