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High biochar rates may suppress rice (Oryza sativa) growth by altering the ratios of C to N and available N to P in paddy soils

生物炭 水稻 土壤水分 农学 化学 生物量(生态学) 斜线和字符 营养物 氮气 总有机碳 土壤碳 动物科学 环境化学 环境科学 生物 土壤科学 热解 基因 有机化学 生物化学
作者
Binh Thanh Nguyen,Vinh Ngọc Nguyễn,Nguyễn Xuân Tòng,My Hoang Nguyen,Hao Phu Dong,Gai Dai Dinh,Nguyễn Văn Nghĩa,Tan‐Viet Pham
出处
期刊:Soil Use and Management [Wiley]
卷期号:39 (1): 415-428 被引量:8
标识
DOI:10.1111/sum.12842
摘要

Abstract Although most studies have indicated that biochar can boost rice ( Oryza sativa ) growth, the material may also suppress it, depending on ratios of carbon (C) to nitrogen (N) and available N to available phosphorous (P). The current study sought to examine the impacts of biochar on rice growth and to identify underlying mechanisms. A pot experiment was conducted using two soils of high (3.05%) and low (0.54%) organic carbon (OC) content, mixed with 0, 1.5, 3, 6, and 12% biochar and planted with rice. Rice growth components, five rice tissue nutrients, and nine soil properties were measured. The results showed that the response of rice growth to biochar rates could be described using an exponential‐growth function in high‐OC soil but an inverted U‐shaped curve in low‐OC soil. In high‐OC soil, the 12% biochar rate led to the greatest total biomass, increased by 47%, whereas in low‐OC soil, the 3 and 6% rates exhibited the highest total biomass, increased by 44%, compared to the no‐biochar added soils. Biochar elevated the C:N ratio from 11.5 to 39.1, with an optimal range of 20–30 corresponding to the highest rice growth. Biochar declined the ratio of NH 4 ‐N to Mehlich‐1 P, causing N deficiency. In brief, high biochar rates may suppress rice growth when the soil C:N ratio exceeds 30. The applied biochar rate should be considered based on soil properties typically OC and N content to obtain the C:N ratio between 20 and 30 for optimal rice growth.
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