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Biochar-based fertilizer: Supercharging root membrane potential and biomass yield of rice

机译:生物炭基肥料:提高水稻的根膜势和生物量产量

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Biochar-based compound fertilizers (BCF) and amendments have proven to enhance crop yields and modify soil properties (pH, nutrients, organic matter, structure etc.) and are now in commercial production in China. While there is a good understanding of the changes in soil properties following biochar addition, the interactions within the rhizosphere remain largely unstudied, with benefits to yield observed beyond the changes in soil properties alone. We investigated the rhizosphere interactions following the addition of an activated wheat straw BCF at an application rates of 0.25% (g-g~(-1) soil), which could potentially explain the increase of plant biomass (by 67%), herbage N (by 40%) and P (by 46%) uptake in the rice plants grown in the BCF-treated soil, compared to the rice plants grown in the soil with conventional fertilizer alone. Examination of the roots revealed that micron and submicron-sized biochar were embedded in the plaque layer. BCF increased soil Eh by 85 mV and increased the potential difference between the rhizosphere soil and the root membrane by 65 mV. This increased potential difference lowered the free energy required for root nutrient accumulation, potentially explaining greater plant nutrient content and biomass. We also demonstrate an increased abundance of plant-growth promoting bacteria and fungi in the rhizosphere. We suggest that the redox properties of the biochar cause major changes in electron status of rhizosphere soils that drive the observed agronomic benefits.
机译:基于生物炭的复合肥料(BCF)及其改良剂已被证明可以提高农作物产量并改变土壤特性(pH,养分,有机质,结构等),现已在中国投入商业生产。尽管对添加生物炭后土壤性质的变化有了很好的了解,但根际内的相互作用仍未得到充分研究,单单土壤性质的变化就可以观察到产量的收益。我们研究了以0.25%(gg〜(-1)土壤)的施用量添加活化麦秸秆BCF后的根际相互作用,这可能解释了植物生物量(增加了67%),牧草氮(增加了与仅用常规肥料在土壤中生长的水稻植物相比,在BCF处理过的土壤中生长的水稻植物吸收40%(磷)和P(46%)。对根的检查表明,微米和亚微米大小的生物炭嵌入在菌斑层中。 BCF使土壤Eh增加85 mV,并使根际土壤和根膜之间的电位差增加65 mV。电位差的增加降低了根系养分积累所需的自由能,可能解释了更高的植物养分含量和生物量。我们还证明了根际中促进植物生长的细菌和真菌的含量增加。我们建议生物炭的氧化还原特性导致根际土壤电子状态发生重大变化,从而驱动观察到的农艺效益。

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