植物生态学报 ›› 2026, Vol. 50 ›› Issue (预发表): 0-.DOI: 10.17521/cjpe.2025.0417

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氮添加对不同pH森林土壤有机碳及其组分的影响: 进展与展望

徐嘟, 耿庆宏, 徐侠, 许崇华   

  1. 浙江农林大学浙江省农林生态系统固碳减排重点实验室,环境与资源学院、碳中和学院, 318000
    西北农林科技大学林学院, 712100
  • 收稿日期:2025-11-24 修回日期:2026-02-03 出版日期:2026-07-28 发布日期:2026-08-27
  • 基金资助:
    浙江农林大学科研发展基金人才启动项目(2023LFR052); 浙江农林大学科研发展基金人才启动项目(2023LFR091)

Effects of nitrogen addition on forest soil organic carbon and its fractions across different soil pH levels: Progress and Perspectives

  1. , 318000,
    , 712100,
  • Received:2025-11-24 Revised:2026-02-03 Online:2026-07-28 Published:2026-08-27
  • Supported by:
    Supported by the National Natural Science Foundation of China(32471644); and Talent Startup Program of the Scientific Research Development Fund, Zhejiang A&F University(2023LFR052 and 2023LFR091)

摘要: 森林土壤有机碳(SOC)是全球碳循环的重要组成部分。在全球氮沉降持续加剧的背景下,氮添加对森林SOC及其组分——[颗粒态有机碳(POC)与矿物结合态有机碳(MAOC)]的影响在生态学领域已受到广泛关注。然而,氮添加的效应在不同土壤pH条件下呈现出显著差异,且尚未形成系统的机制整合框架。本文以土壤pH梯度为主线(酸性:pH<5.5;弱酸-中性:pH 5.5~7.5;碱性:pH>7.5),系统归纳了氮添加对SOC、POC及MAOC的影响模式,并基于“碳输入-碳输出-稳定化过程”的三条路径解析其差异机制。研究发现,酸性森林土壤中,氮添加主要表现为促进SOC净积累的正效应——短期通过促进植物碳输入量与抑制土壤碳分解降低碳输出,长期以抑制碳输出为核心路径,驱动SOC与POC的累积;同时,氮添加可通过增强矿物-有机质结合及缓解MAOC分解速率,促进MAOC含量增加。弱酸-中性森林土壤中,氮添加效应趋于平衡:短期碳输入与碳输出过程可同步增强,长期则可能呈现共同下降趋势,导致SOC整体表现为特征弱响应;其中,POC含量常因碳输入增加或分解受抑而呈上升趋势,而MAOC可能因盐基离子淋失与微生物残体输入减少的影响下而下降。碱性森林土壤中,现有研究证据显示,SOC对氮添加的整体响应多不显著,其可能归因于碳输入量增加与分解过程增强的相互抵消效应,但POC与MAOC的响应规律及其调控机制仍存在明显的研究缺口。未来研究应加强对碱性土壤背景下森林生态系统土壤碳循环过程的系统性探索,通过整合多尺度观测与机制模型,深入揭示植物-微生物-矿物协同作用下的碳氮耦合机制,为精准预测森林碳汇功能、优化氮素管理策略提供科学依据。

关键词: 土壤有机碳, 颗粒态有机碳, 矿物结合态有机碳, 森林生态系统, 土壤pH, 氮添加

Abstract: Soil organic carbon (SOC) in forest ecosystems is a crucial component of the global carbon cycle. Under the persistent intensification of global nitrogen deposition, the effects of nitrogen addition on forest SOC and its components—particulate organic carbon (POC) and mineral-associated organic carbon (MAOC)—have attracted widespread attention in ecology. However, the effects of nitrogen addition vary significantly under different soil pH conditions, and a systematic integrative framework explaining the underlying mechanisms remains lacking. This article systematically synthesizes the patterns of nitrogen addition effects on SOC, POC, and MAOC along a soil pH gradient (acidic: pH < 5.5; weakly acidic to neutral: pH 5.5–7.5; alkaline: pH > 7.5) and analyzes the differential mechanisms through three pathways: "carbon input-carbon output-stabilization processes." The study finds that in acidic forest soils, nitrogen addition primarily exhibits a positive effect by promoting net SOC accumulation—enhancing plant carbon inputs and suppressing soil carbon decomposition to reduce carbon output in the short term, while in the long term, inhibiting carbon output serves as the core pathway driving the accumulation of both SOC and POC. Concurrently, nitrogen addition can increase MAOC content by strengthening mineral–organic associations and slowing MAOC decomposition rates. In weakly acidic to neutral forest soils, the effects of nitrogen addition tend to balance out: short-term increases in carbon input and output may occur simultaneously, whereas in the long term, both may decline, leading to an overall weak response of SOC. Within this context, POC content often increases due to enhanced carbon inputs or suppressed decomposition, whereas MAOC may decrease due to base cation leaching and reduced microbial necromass input. In alkaline forest soils, existing evidence suggests that the overall response of SOC to nitrogen addition is mostly insignificant, likely attributable to the offsetting effects of increased carbon inputs and enhanced decomposition processes. However, clear research gaps remain regarding the response patterns and regulatory mechanisms of POC and MAOC in these systems. Future research should strengthen systematic exploration of soil carbon cycling processes in forest ecosystems under alkaline soil conditions, integrating multi-scale observations and mechanistic models to deepen the understanding of carbon-nitrogen coupling mechanisms mediated by plant-microbe-mineral interactions, thereby providing a scientific basis for accurately predicting forest carbon sink functions and optimizing nitrogen management strategies.

Key words: Soil organic carbon, Particulate organic carbon, Mineral-associated organic carbon, Forest ecosystem, Soil pH, Nitrogen addition