Physico-chemical properties and microbial responses in biochar-amended soils: Mechanisms and future directions

被引:905
作者
Gul, Shamim [1 ,2 ]
Whalen, Joann K. [1 ]
Thomas, Ben W. [1 ]
Sachdeva, Vanita [1 ]
Deng, Hongyuan [1 ]
机构
[1] McGill Univ, Dept Nat Resource Sci, Ste Anne De Bellevue, PQ H9X 3V9, Canada
[2] Univ Balochistan, Dept Bot, Quetta, Balochistan, Pakistan
基金
加拿大自然科学与工程研究理事会;
关键词
Biochar production temperature; Pyrolysis feedstocks; Biochar-microbial interactions; Soil microbial biomass; Microbial community structure; pH; Texture; PYROLYSIS TEMPERATURE; CARBON SEQUESTRATION; ORGANIC-MATTER; PHYSICAL-PROPERTIES; SLOW PYROLYSIS; BLACK CARBON; COMMUNITY COMPOSITION; CHEMICAL-COMPOSITION; HYDRAULIC-PROPERTIES; PHOSPHORUS SORPTION;
D O I
10.1016/j.agee.2015.03.015
中图分类号
S [农业科学];
学科分类号
09 ;
摘要
Soil microbial communities are responsive to biochar amendments. As the residence time of biochar in soil is expected to be hundreds to thousands of years, the changes in microbial community structure and functions could persist for a long period of time. Given that biochar is being applied as a soil amendment in many parts of the world, the long-term consequences for soil microbial communities need to be considered. The objective of this review is to document how biochar creates new habitats and changes the soil environment for microorganisms, which may lead to changes in microbial abundance, community structure and activities. Our meta-analysis revealed that slow pyrolyzed biochars produced from various feedstocks at temperatures from 300 degrees C to 600 degrees C consistently increased some physicochemical properties (i.e., pH, cation exchange capacity and aggregation) and microbial parameters (i.e., abundance and community structure of microorganisms) in a vast number of soils during short (<= 90 days) laboratory incubations and longer (1-3 years) field studies. The biochar-mediated changes in soil physico-chemical and biological properties appeared to be a function of soil texture and biochar type based on its feedstock and production temperature, which determines key biochar characteristics such as surface area, porosity and pH. Biochars derived from manure or crop residue feedstocks tend to promote microbial abundance more than wood-derived biochars. Biochars derived from wood and other lignocellulosic-rich feedstocks tend to exhibit beneficial effects on soil microbial abundance later (>= 60 days) than biochars from manure or crop residue feedstocks. Coarse textured soils tend to have less aggregation, lower microbial biomass and lower enzyme activities when amended with slow pyrolyzed biochars produced at high temperatures (>600 degrees C), but these biochars did not affect the physico-chemical and biological properties of clayey soils. Further research is needed to evaluate the magnitude of biochar influence on soil microbial abundance and activities considering (1) the biochar particle size, surface area, porosity, nutrient content and pH, and (2) the soil organic matter (SOM) content and microbial abundance of the soil matrix. Once the microbial activities in the biochar-soil system are understood, they can be manipulated through organic and inorganic fertilizer applications to sustain or improve agricultural crop production. (C) 2015 Elsevier B.V. All rights reserved.
引用
收藏
页码:46 / 59
页数:14
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