数字农科院2.0

Gross nitrogen mineralization and nitrification at an optimal phosphorus input level in southern Chinese red soil with long-term fertilization

文献类型: 外文期刊

作者: Sehrish Ali;Liu Kailou;Waqas Ahmed;N. G. Hayatu;N. A. Daba;Ali Akbar Maitlo;Shen Zhe;Li Jiwen;Huang Jing;Zhang Huimin

作者机构:

关键词: Gross nitrogen mineralization;Long-term fertilization;Phosphorus addition;Soil microbial biomass;Upland soil

期刊名称: Soil and Tillage Research

ISSN: 0167-1987

年卷期: 2023 年 230 卷

页码:

收录情况: SCIE(2023版) ; ; EI(2023版)

摘要: In China, phosphorus (P) is recognized as a “key limiting nutrient” for crop production, and its overuse results in underground leaching, ecosystem alterations and risks to humans, such as degraded surface water quality. The coupling of nitrogen (N) and P implies that soil N dynamics are largely affected by P availability. However, how the addition of P affects soil N transformations remains less understood. To determine the optimal P-input level, we performed an incubation experiment on an upland soil from Jinxian in China after long-term mineral fertilizer application and P addition. The two treatments without N addition T1 (no fertilizer) and T2 (inorganic potassium fertilizer) and the two treatments with N addition T3 (inorganic nitrogen fertilizer) and T4 (inorganic nitrogen and potassium fertilizer) were selected from the long-term experiment that involved scientific management at five P-input levels (0, 25, 50, 75, and 100 kg P2O5 ha−1) with three replications. The results showed that soil organic matter (SOM) increased in the T3 and T4 treatments compared with the T1 and T2 treatments. The T4 treatment resulted in the maximum N concentration of 1.28 g kg−1, followed by that in the T3 treatment (1.25 g kg−1), T2 (0.16 g kg−1) and that in the T1 treatment (0.10 g kg−1), in the soil. Among the different treatments, soil microbial biomass carbon (SMBC) and nitrogen (SMBN) were significantly higher (492.69 mg kg−1 and 73.36 mg kg−1, respectively) in the T3 treatment than in the other treatments, while soil microbial biomass phosphorus (SMBP) was higher in the T4 treatment (17.55 mg kg−1). With the addition of P, the gross N mineralization rate was substantially enhanced when N and K were applied. After the 90-day incubation period, with higher concentrations of NO3--N and NH4+-N in the T4 treatment than in the other treatments, the concentrations were significantly increased by P addition, specifically T4P4 by 11.27% and 37.37%, T4P3 by 12.64% and 30.29%, T4P2 by 22.94% and 64.53%, and T4P1 by 3.93% and 11.09%, compared with those of T4P0, respectively; these results indicated a maximum N mineralization potential (No) and mineralization rate constant, k (NMR). As a result of the increased gross nitrogen mineralization rates and associated NH4+ substrate availability, the gross nitrification rate was also increased by P addition. Based on the polynomial regression analysis, the inclusion of P at the rate of 60 kg P2O5 ha−1 can be used effectively to obtain maximum gross N mineralization rates in soil. Additionally, to fully understand why P addition is more effective under specific soil and environmental conditions, more research is necessary to determine the underlying mechanisms.

分类号:

  • 相关文献

[1]Global patterns of the interactive effects of N and P enrichment on terrestrial microbial biomass. Li S.,Zhang S.,Tang S.,Duan S.,Shao Q.,Zhan Q.,Jin K.. 2024

[2]How does phosphorus fertilizer improve the stability of soil aggregates? Evidence from a decade fertilization experiment. Chen, Mengmeng,Liu, Lu,Song, Xiaoyou,Zhang, Shirong,Cheng, Ben,Ding, Xiaodong. 2024

[3]Microcalorimetric assessment of microbial activity in long-term fertilization experimental soils of Southern China. Ahamadou, Bocar,Huang, Qiaoyun,Chen, Wenli,Zhang, Jingyuan,Ahamadou, Bocar,Huang, Qiaoyun,Mohamed, Ibrahim,Cai, Peng,Liang, Wei,Wen, Shilin.

[4]Composition of sulphur pool in selected upland soils in north China. 周卫,林葆,汪洪,李书田,何萍. 1999

[5]Modeling the impact of climate change on soil organic carbon stock in upland soils in the 21st century in China. Wan, Yunfan,Lin, Erda,Xiong, Wei,Li, Yu'e,Guo, Liping,Wan, Yunfan,Lin, Erda,Xiong, Wei,Li, Yu'e,Guo, Liping. 2011

[6]N Addition Overwhelmed the Effects of P Addition on the Soil C, N, and P Cycling Genes in Alpine Meadow of the Qinghai-Tibetan Plateau. Jiannan Xiao,Shikui Dong,Hao Shen,Shuai Li,Kelly Wessell,Shiliang Liu,Wei Li,Yangliu Zhi,Zhiyuan Mu,Hongbo Li. 2022

[7]Organic and Inorganic Nitrogen forms as Affected by Phosphorus Additions in a Maize-Mustard Cropping System. Zhang, Yang,Zhang, Xiaojia,Zhou, Chuan,Lei, Ping,Sootahar, Mahendar Kumar,Ni, Jiupai. 2022

[8]Response of soil organic carbon stability and sequestration to long-term phosphorus application: insight from a 9-year field experiment in saline alkaline paddy soil. Chen, Mengmeng,Song, Xiaoyou,Liu, Lu,Jing, Zhichang,Miao, Jianyong,Ding, Xiaodong,Li, Yuyi,Zhang, Shirong. 2023

[9]The effect of imazethapyr on soil microbes in soybean fields in northeast China. Zhang, Changpeng,Liu, Xingang,Dong, Fengshou,Xu, Jun,Zheng, Yongquan.

[10]Soil microbial biomass and activity in Chinese tea gardens of varying stand age and productivity. Han, Wenyan,Kemmitt, Sarah J.,Brookes, Philip C.. 2007

[11]Effects of myclobutanil on soil microbial biomass, respiration, and soil nitrogen transformations. Xu, Jun,Wu, Xiaohu,Dong, Fengshou,Liu, Xingang,Zheng, Yongquan.

[12]Biogas Residues Improved Microbial Diversity and Disease Suppression Function under Extent Indigenous Soil Microbial Biomass. Yubin Zhao,Kai Hu,Jiadong Yu,Md Tariful Alam Khan,Yafan Cai,Xiaoling Zhao,Zehui Zheng,Yuegao Hu,Zongjun Cui,Xiaofen Wang. 2023

[13]Global patterns and controls of the soil microbial biomass response to elevated CO2. Li S.,Xie S.,Zhang S.,Miao S.,Tang S.,Chen H.,Zhan Q.. 2022

[14]Soil Microbial Characteristics And Yield R.esponse To Partial Substitution O f Chemical Fertilizer With Organic Amendments In Greenhouse Vegetable Production. Rong, QL, Li Ruo, N, Huang, SW, Tang, JW, Zhang, YC, Wang, LY. 2018

[15]Nitrogen mineralization, soil microbial biomass and extracellular enzyme activities regulated by long-term n fertilizer inputs: A comparison study from upland and paddy soils in a red soil region of china. Sehrish Ali,Kailou Liu,Waqas Ahmed,Huang Jing,Muhammad Qaswar,Christian Kofi Anthonio,Ali Akbar Maitlo,Zhang Lu,Lisheng Liu,Huimin Zhang. 2021

[16]Response of soil microbial biomass C, N, and P and microbial quotient to agriculture and agricultural abandonment in a meadow steppe of northeast China. Yuchun Yan,Chu Wang,Jingmin Zhang,Yu Sun,Xingliang Xu,Na Zhu,Yurong Cai,Dawei Xu,Xu Wang,Xiaoping Xin,Jinqiang Chen. 2022

[17]Effects of grassland converted to cropland on soil microbial biomass and community from agro-pastoral ecotone in Northern China. Tang, Shi-ming,Li, Shu-cheng,Wang, Zhen,Zhang, Yu-juan,Wang, Kun. 2021

[18]Soil nitrogen availability drives the response of soil microbial biomass to warming. Li S.,Tang S.,Chen H.,Jin K.. 2024

[19]Trophic regulation of soil microbial biomass under nitrogen enrichment: A global meta-analysis. Xing, Wen,Chen, Xinli,Thakur, Madhav P.,Kardol, Paul,Lu, Xiaoming,Bai, Yongfei. 2024

[20]Crop planting promotes the stabilization of straw-derived carbon in fertilized soil by regulating soil stoichiometry. Zhu, Tengxiao,Mei, Xiuwen,Li, Yuping,Li, Shuangyi,An, Tingting,Wang, Jingkuan. 2025

作者其他论文 更多>>