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生态学杂志 ›› 2026, Vol. 45 ›› Issue (2): 456-462.doi: 10.13292/j.1000-4890.202602.028

• 湿地生态与可持续利用专栏 • 上一篇    下一篇

植物碳硅利用策略及其对滨海湿地碳汇的潜在影响

刘乐乐,尹美淇,于晓娜,杜宁,郭卫华*   

  1. (山东大学生命科学学院, 自然资源部渤海生态预警与保护修复重点实验室, 青岛市生态保护与修复重点实验室, 山东青岛 266237)

  • 出版日期:2026-02-10 发布日期:2026-08-01

Plant carbon-silicon use strategies and the potential impacts on carbon sequestration in coastal wetlands.

LIU Lele, YIN Meiqi, YU Xiaona, DU Ning, GUO Weihua*   

  1. (Qingdao Key Laboratory of Ecological Protection and Restoration, Ministry of Natural Resources Key Laboratory of Ecological Prewarning, Protection and Restoration of Bohai Sea, School of Life Sciences, Shandong University, Qingdao 266237, Shandong, China).

  • Online:2026-02-10 Published:2026-08-01

摘要: 在全球气候变化背景下,滨海湿地作为地球上最具碳汇潜力的生态系统类型之一,其生物地球化学循环过程备受关注。硅元素是地球表面含量第二丰富的元素,在岩石风化、植物生长、有机物质分解等过程中扮演着重要角色,且与碳的循环紧密关联,已成为新的生态学研究热点。本文从植物参与的碳硅过程出发,综述了植物硅利用策略和植硅体封碳潜力两个方面的研究进展,分析了全球气候变化下滨海湿地的植物介导的碳硅耦合循环过程,阐述了富硅植物芦苇作为滨海湿地植物碳硅权衡策略研究的模式物种的可行性,并从植物生态策略理论的整合、土壤植物多过程的耦合以及种内变异驱动机制三个方面,对未来研究提出了展望。


关键词: 蓝碳, 植硅体, 碳硅耦合, 生态策略

Abstract: Coastal wetlands are one of the most promising ecosystems for carbon sequestration, and thus their biogeochemical cycling processes have attracted considerable attention in the context of global climate change. Silicon, the second most abundant element on the Earth’s surface, plays a crucial role in processes such as rock weathering, plant growth, and organic matter decomposition, closely intertwined with carbon cycling, thus emerging as a new research frontier. Starting from the carbon-silicon processes involving plants, we provide a comprehensive review of research progress in two aspects: plant silicon use strategies and the carbon sequestration potential of phytoliths. From the perspective of plant carbon-silicon strategies, we analyze the coupled carbon-silicon cycling in coastal wetlands under global climate change, elucidating the feasibility of using silicon-rich plants such as common reeds (Phragmites australis) as model species for studying plant carbon-silicon strategies in coastal wetlands. Furthermore, we outline future research prospects from three aspects: integration of plant ecological strategy theories, coupling of soil-plant multi-processes, and mechanisms driving intra-species variation.

Key words: blue carbon, phytolith, carbon-silicon coupling, ecological strategy