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绘制全球氮沉降下土壤酸化图。

Mapping global soil acidification under N deposition.

机构信息

Faculty of Natural Resources Management, Lakehead University, Ontario, Thunder Bay, Canada.

School of the Environment and Safety Engineering, Jiangsu University, Jiangsu, Zhenjiang, China.

出版信息

Glob Chang Biol. 2023 Aug;29(16):4652-4661. doi: 10.1111/gcb.16813. Epub 2023 Jun 9.

Abstract

Soil pH is critically important in regulating soil nutrients and thus influencing the biodiversity and ecosystem functions of terrestrial ecosystems. Despite the ongoing threat of nitrogen (N) pollution especially in the fast-developing regions, it remains unclear how increasing N deposition affects soil pH across global terrestrial ecosystems. By conducting a global meta-analysis with paired observations of soil pH under N addition and control from 634 studies spanning major types of terrestrial ecosystems, we show that soil acidification increases rapidly with N addition amount and is most severe in neutral-pH soils. Grassland soil pH decreases most strongly under high N addition while wetlands are the least acidified. By extrapolating these relationships to global mapping, we reveal that atmospheric N deposition leads to a global average soil pH decline of -0.16 in the past 40 years and regions encompassing Eastern United States, Southern Brazil, Europe, and South and East Asia are the hotspots of soil acidification under N deposition. Our results highlight that anthropogenically amplified atmospheric N deposition has profoundly altered global soil pH and chemistry. They suggest that atmospheric N deposition is a major threat to global terrestrial biodiversity and ecosystem functions.

摘要

土壤 pH 值在调节土壤养分方面至关重要,因此影响陆地生态系统的生物多样性和生态系统功能。尽管氮(N)污染的持续威胁,特别是在快速发展的地区,目前尚不清楚增加 N 沉降如何影响全球陆地生态系统的土壤 pH 值。通过对来自 634 项主要陆地生态系统类型的研究的 N 添加和对照下土壤 pH 值的成对观测进行全球荟萃分析,我们表明土壤酸化随着 N 添加量的增加而迅速增加,在中性 pH 值的土壤中最为严重。在高 N 添加下,草原土壤 pH 值下降最强烈,而湿地酸化程度最低。通过将这些关系外推到全球制图,我们揭示了大气 N 沉降导致过去 40 年全球平均土壤 pH 值下降了 0.16,包含美国东部、巴西南部、欧洲以及南亚和东亚的地区是 N 沉降下土壤酸化的热点。我们的研究结果强调了人为增强的大气 N 沉降已经深刻改变了全球土壤 pH 值和化学性质。它们表明大气 N 沉降是对全球陆地生物多样性和生态系统功能的主要威胁。

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