中国农业气象 ›› 2026, Vol. 47 ›› Issue (8): 1262-1271.doi: 10.3969/j.issn.1000-6362.2026.08.008

• 农业生物气象栏目 • 上一篇    下一篇

不同施肥措施对稻田土壤有机碳组分的影响

张靖瑜,李迎春,马芬,曹国军,陈国徽,陈艳芳,彭春凤,秦康曦   

  1. 1. 中国农业科学院农业环境与可持续发展研究所/农业农村部农业农村生态环境重点实验室,北京 100081;2. 福建农林大学数字经济学院,福州 350002;3. 九江市农业科学院,九江 332000;4. 农业农村部微藻资源农业利用重点实验室,九江 332000
  • 收稿日期:2025-06-04 出版日期:2026-08-20 发布日期:2026-08-18
  • 作者简介:张靖瑜,E-mail:82101225292@caas.cn
  • 基金资助:
    中国农业科学院农业绿色低碳科学中心项目(CAAS−CSGLCA−202301)

Influence of Different Fertilization Measures on the Organic Carbon Components of Paddy Field Soil

ZHANG Jing-yu, LI Ying-chun, MA Fen, CAO Guo-jun, CHEN Guo-hui, CHEN Yan-Fang, PENG Chun-feng, QIN Kang-xi   

  1. 1. Institute of Agricultural Environment and Sustainable Development/Key Laboratory of Agricultural and Rural Eco−Environment, Ministry of Agriculture and Rural Affairs, Chinese Academy of Agricultural Sciences, Beijing 100081, China; 2. College of Digital Economy, Fujian Agriculture and Forestry University, Fuzhou 350002; 3. Jiujiang Academy of Agricultural Sciences, Jiujiang 332000; 4. Key Laboratory of Microalgae Resources Agricultural Utilization, Ministry of Agriculture and Rural Affairs, Jiujiang 332000
  • Received:2025-06-04 Online:2026-08-20 Published:2026-08-18

摘要:

20232024年在江西省九江市开展水稻田间试验,设置不施氮肥(N0)、常规施氮(N100)、减氮20%N80)、减氮20%配施梯度微藻生物肥(M1N80M2N80M3N80)、减氮20%配施生物炭(BN80)和减氮40%配施微藻生物肥(M4N60)共 8 个处理,评估减氮配施微藻生物肥与生物炭处理对稻田土壤有机碳(SOC)及其组分的影响,为提高土壤有机碳含量和提升土壤固碳能力提供参考。结果表明:稻田土壤矿物结合态有机碳(MOC)含量占土壤总有机碳的60.3%76.5%M3N80BN80处理下MOC含量较N100处理显著提升45.3%46.8%P<0.05),并因此促进SOC整体含量增加27.6%34.3%。减氮配施微藻生物肥处理可显著提升水稻关键生育期土壤可溶性有机碳(DOC)含量9.8%260.0%及微生物量碳(MBC)含量10.7%120.0%。说明生物炭与高量微藻肥(M3N80)施用对提升稻田土壤有机碳含量效果最优,外源有机输入可增强土壤SOC稳定性,研究结果为稻田碳汇功能提升提供了基于组分调控的施肥新策略。

关键词: 施肥调控, 稻田, 土壤有机碳组分, 微藻生物肥, 生物炭

Abstract:

A rice field experiment was conducted in Jiujiang city, Jiangxi province, from 2023 to 2024, with the following eight treatments of no nitrogen fertilizer (N0), conventional nitrogen application (N100), 20% nitrogen reduction (N80), 20% nitrogen reduction with different amounts of microalgae biofertilizer (M1N80, M2N80 and M3N80), 20% nitrogen reduction with biochar (BN80) and 40% nitrogen reduction with microalgae biofertilizer (M4N60). This study aimed to assess the impacts of nitrogen reduction combined with microalgae biofertilizer and biochar treatments on soil organic carbon (SOC) and its components in paddy fields to provide a scientific basis for enhancing SOC content and improving soil carbon sequestration potential. The results showed that the mineral−associated organic carbon (MOC) accounted for 60.3%−76.5% of the total soil organic carbon. Compared with the N100 treatment, both M3N80 and BN80 treatments significantly increased MOC content by 45.3%−46.8% (P<0.05), which in turn contributed to a 27.6%−34.3increase in total SOC content. The 20% nitrogen reduction with microalgae fertilizer and biochar significantly increased soil dissolved organic carbon (DOC) by 9.8%−260.0% and microbial biomass carbon (MBC) by 10.7%−120.0% during key rice growth stages. The results demonstrate that biochar and high−dose microalgae biofertilizer (M3N80) application exhibit optimal performance in enhancing SOC content in paddy fields, confirming that exogenous organic inputs can improve SOC stability, thereby providing a novel componentregulated fertilization strategy to enhance carbon sequestration capacity in rice ecosystems

Key words: Fertilization control, Rice paddy, Soil organic carbon component, Microalgae biofertilizer, Biochar