<p><UnorderedList Mark="Bullet"> <ItemContent> <p>Granulated straw (GS) incorporation rapidly promoted soil carbon (C) over 80% than control.</p> </ItemContent> <ItemContent> <p>The efficiency of straw-C converted into soil organic C pool was ∼50% in soils.</p> </ItemContent> <ItemContent> <p>GS and nutrient (GS<sub>N</sub>) incorporation reduced soil C by 11.3% in upland than GS.</p> </ItemContent> <ItemContent> <p>GS<sub>N</sub> incorporation enhanced soil C by 2.2% than GS in paddy via microbial necromass.</p> </ItemContent> </UnorderedList></p><p>Granulating fluffy straw into high-density particles is an innovative approach for uniformly incorporating straw into plough layers. However, massive granulated straw incorporation probably causes microbial nutrient limitation, decreasing straw-C accrual and crop yield. Whether nutrient supplement increases straw-C accumulation remains unclear. In this study, we conducted one-year of micro-plot experiments incorporating massive granulated straw with initial C:N ratio (GS) and adjusted the C:N ratio by nutrient supplement (GS<sub>N</sub>) in infertile upland and paddy. After one year, GS incorporation greatly improved the surface (0–20 cm layer) soil organic C by 91% and 80% in upland and paddy, respectively, compared to their control. In upland, GS led to lower lignin phenols but higher amino sugars than paddy owing to its stronger microbial anabolism. In upland, GS<sub>N</sub> incorporation decreased soil organic C by 11.3% than GS by reducing lignin phenols and amino sugars. However, GS<sub>N</sub> incorporation increased organic C by 2.2% in paddy, <i>via</i> promoting microbial necromass accumulation. GS<sub>N</sub> incorporation improved crop yield by 26.6% in upland and 12.0% in paddy than GS. Collectively, granulated straw incorporation effectively enhances organic C and crop yield but that responses to nutrient supplement depend on soil properties. Tailored nutrient management is crucial to optimizing C sequestration and productivity in diverse soils.</p>

错误:搜索内容不能为空,请输入英文关键词
错误:关键词超出字数限制,请精简
高级检索

Carbon accumulation efficiency of granulated straw incorporation and its response to nutrient supplement in infertile agricultural soils: Evidence from biomarkers

  • Xun Duan,
  • Xiangbi Chen,
  • Wenju Zhang,
  • Jun Wang,
  • Ling Xie,
  • Yijun Xu,
  • Shiyou Hu,
  • Guangxu Zhu,
  • Wei Gao,
  • Jinshui Wu

摘要

Granulated straw (GS) incorporation rapidly promoted soil carbon (C) over 80% than control.

The efficiency of straw-C converted into soil organic C pool was ∼50% in soils.

GS and nutrient (GSN) incorporation reduced soil C by 11.3% in upland than GS.

GSN incorporation enhanced soil C by 2.2% than GS in paddy via microbial necromass.

Granulating fluffy straw into high-density particles is an innovative approach for uniformly incorporating straw into plough layers. However, massive granulated straw incorporation probably causes microbial nutrient limitation, decreasing straw-C accrual and crop yield. Whether nutrient supplement increases straw-C accumulation remains unclear. In this study, we conducted one-year of micro-plot experiments incorporating massive granulated straw with initial C:N ratio (GS) and adjusted the C:N ratio by nutrient supplement (GSN) in infertile upland and paddy. After one year, GS incorporation greatly improved the surface (0–20 cm layer) soil organic C by 91% and 80% in upland and paddy, respectively, compared to their control. In upland, GS led to lower lignin phenols but higher amino sugars than paddy owing to its stronger microbial anabolism. In upland, GSN incorporation decreased soil organic C by 11.3% than GS by reducing lignin phenols and amino sugars. However, GSN incorporation increased organic C by 2.2% in paddy, via promoting microbial necromass accumulation. GSN incorporation improved crop yield by 26.6% in upland and 12.0% in paddy than GS. Collectively, granulated straw incorporation effectively enhances organic C and crop yield but that responses to nutrient supplement depend on soil properties. Tailored nutrient management is crucial to optimizing C sequestration and productivity in diverse soils.