Differential dissolution of biogenic silica significantly affects the utility of sediment diatoms as paleoceanographic proxies

Author:

Ran Lihua123ORCID,Wiesner Martin G.3,Liang Yuzhao1,Liang Wen1ORCID,Zhang Lanlan4,Yang Zhi1,Li Hongliang123,Chen Jianfang13

Affiliation:

1. Key Laboratory of Marine Ecosystem Dynamics, Second Institute of Oceanography, Ministry of Natural Resources Hangzhou Zhejiang People's Republic of China

2. Southern Marine Science and Engineering Guangdong Laboratory Zhuhai Guangdong People's Republic of China

3. State Key Laboratory of Satellite Ocean Environment Dynamics, Second Institute of Oceanography, Ministry of Natural Resources Hangzhou Zhejiang People's Republic of China

4. Key Laboratory of Ocean and Marginal Sea Geology, Chinese Academy of Science Guangzhou Guangdong People's Republic of China

Abstract

AbstractDiatoms and biogenic silica (biogenic Si) in sediments are commonly analyzed as paleoceanographic environmental indicators. However, the correspondence between these sedimentary components and their counterparts in the water column above can vary over time and space. This study, undertaken in the northern South China Sea, compares diatoms and biogenic Si in sinking particles from the water column with those in surface sediments below. The results indicate substantial losses of diatoms and biogenic Si during sinking and burial, along with changes in diatom assemblages. About 6% of diatoms sinking from 1000 m depth are estimated to be preserved in sediments: 32% are recycled in the water column and 62% are lost at the sediment–water interface. Approximately, 12% of biogenic Si is preserved in sediments: 6% is remineralized in the water column and 82% is lost at the sediment–water interface. The differences between diatom and biogenic Si preservation and remineralization are likely due to differences in dissolution resistance among the various diatom species and between diatoms and other silicifiers (e.g., radiolarians), along with effects of lateral transport. This variability introduces uncertainties into paleoceanographic inferences made from these two proxies from the sediments. Thalassionema nitzschioides was found to dominate sediment assemblages, which we attribute to its great resistance to dissolution, and to be negatively correlated with diatom sinking fluxes. These properties suggest that in the northern South China Sea, T. nitzschioides may potentially be useful as an indicator of low paleoproductivity (e.g., as seen during strong El Niño events).

Funder

State Key Laboratory of Satellite Ocean Environment Dynamics

National Natural Science Foundation of China

Publisher

Wiley

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