自行车
环境科学
陆地生态系统
生态系统
硝化作用
氮气循环
反硝化
生物多样性
农学
植物多样性
陆生植物
单作
生态学
硝酸盐
含水量
土壤生物多样性
铵
土壤生物学
土壤酸化
全球变化
土壤pH值
植物群落
草原
土壤水分
氮气
营养循环
土壤科学
农林复合经营
生态演替
土壤有机质
作者
Miaomiao Cai,Caifang Zhang,Han Y. H. Chen,Caroline Njambi Ndungu,Daoliang Shi,Wenzhi Liu
标识
DOI:10.1111/1365-2664.70310
摘要
Abstract Nitrogen (N) is essential to all life on Earth. Despite ongoing biodiversity loss, the influence of plant diversity on soil N cycling over time remains uncertain, which limits our ability to predict terrestrial N pools and transformations globally. To determine the long‐term effects of plant diversity on soil N pools and N transformations, we conducted a global synthesis using 2129 paired observations of plant mixtures and corresponding monocultures from 135 studies across 32 countries. On average, plant mixtures have 3.1% higher soil total N content than monocultures, but 7.7% to 31.6% lower soil ammonium content, nitrate content and rates of soil N mineralization, nitrification, denitrification and N 2 O emissions. Notably, the effects of plant mixtures on soil total N content and rates of N mineralization, nitrification and denitrification shift rapidly over time from negative to positive. However, their effects on soil nitrate content and N 2 O emissions are consistently negative. Furthermore, these plant mixture effects remain consistent across ecosystems. Synthesis and applications . These findings suggest that conserving and restoring plant diversity can enhance long‐term N transformation rates and total soil N content, while reducing N 2 O emissions, collectively promoting soil N cycling sustainability and mitigating climate change‐related risks. Read the free Plain Language Summary for this article on the Journal blog .
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