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  1. National Taiwan Ocean University Research Hub
  2. 海洋科學與資源學院
  3. 海洋環境與生態研究所
Please use this identifier to cite or link to this item: http://scholars.ntou.edu.tw/handle/123456789/19467
Title: A Unique Diel Pattern in Carbonate Chemistry in the Seagrass Meadows of Dongsha Island: The Enhancement of Metabolic Carbonate Dissolution in a Semienclosed Lagoon
Authors: Chou, Wen-Chen 
Fan, Lan-Feng
Yang, Chang-Chang
Chen, Ying-Hsuan
Hung, Chin-Chang
Huang, Wei-Jen
Shih, Yung-Yen
Soong, Keryea
Tseng, Hsiao-Chun 
Gong, Gwo-Ching 
Chen, Hung-Yu 
Su, Cheng-Kuan
Keywords: DISSOLVED ORGANIC-MATTER;OCEAN ACIDIFICATION;SYSTEM;SEA;VARIABILITY;ALKALINITY;CO2;WATERS;PHOTOSYNTHESIS;PLATFORM
Issue Date: 11-Nov-2021
Publisher: FRONTIERS MEDIA SA
Journal Volume: 8
Source: FRONT MAR SCI
Abstract: 
In contrast to other seagrass meadows where seawater carbonate chemistry generally shows strong diel variations with higher pH but lower partial pressure of CO2 (pCO(2)) during the daytime and lower pH but higher pCO(2) during nighttime due to the alternation in photosynthesis and respiration, the seagrass meadows of the inner lagoon (IL) on Dongsha Island had a unique diel pattern with extremely high pH and low pCO(2) across a diel cycle. We suggest that this distinct diel pattern in pH and pCO(2) could be associated with the enhancement of total alkalinity (TA) production coupled to carbonate sediment dissolution in a semienclosed lagoon. The confinement of the IL may hamper water exchange and seagrass detritus export to the adjacent open ocean, which may result in higher organic matter loading to the sediments, and longer residence time of the water in the IL, accompanied by microbial respiration (both aerobic and anaerobic) that may reduce carbonate saturation level to drive carbonate dissolution and thus TA elevation, thereby forming such a unique diel pattern in carbonate chemistry. This finding further highlights the importance of considering TA production through metabolic carbonate dissolution when evaluating the potential of coastal blue carbon ecosystems to buffer ocean acidification and to absorb atmospheric CO2, in particular in a semienclosed setting.
URI: http://scholars.ntou.edu.tw/handle/123456789/19467
ISSN: 2296-7745
DOI: 10.3389/fmars.2021.717685
Appears in Collections:海洋環境與生態研究所
13 CLIMATE ACTION
海洋環境資訊系
14 LIFE BELOW WATER
15 LIFE ON LAND

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