Ehui Tan
Xiamen University
27 Papers
Ehui Tan is an academic researcher from Xiamen University. The author has contributed to research in topics: Estuary & Chemistry. The author has an hindex of 6, co-authored 11 publications. Previous affiliations of Ehui Tan include Hainan University.
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Papers
Warming stimulates sediment denitrification at the expense of anaerobic ammonium oxidation
Ehui Tan,Wenbin Zou,Zhenzhen Zheng,Xiuli Yan,Moge Du,Ting-Chang Hsu,Li Tian,Jack J. Middelburg,Thomas W. Trull,Shuh-Ji Kao +9 more
TL;DR: In this paper, the authors propose a framework to improve the quality of the information provided by the users in order to improve their experience with the system, including the support from the system provider.
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Nitrogen transformations and removal efficiency enhancement of a constructed wetland in subtropical Taiwan.
TL;DR: Investigation of seasonal nitrogen transformations and removal pathways in a surface-flow constructed wetland in subtropical Taiwan found denitrification exceeds anammox dominated the nitrogen removal pathway throughout seasons, and proposed to enhance nitrate removal efficiency via Denitrification by physically promoting NOx--N and oxygen exchanges through the sediment-water interface.
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Fluxes of dissolved organic carbon and nutrients via submarine groundwater discharge into subtropical Sansha Bay, China
TL;DR: In this paper, the role of submarine groundwater discharge (SGD) plays in the carbon and nutrient budgets in subtropical Sansha Bay, southeastern China, radium isotopes were used as SGD tracers and investigated in the bay and surrounding groundwater.
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Substrate regulation leads to differential responses of microbial ammonia-oxidizing communities to ocean warming
Zhenzhen Zheng,Li-Wei Zheng,Min Nina Xu,Min Nina Xu,Ehui Tan,David A. Hutchins,Wenchao Deng,Yao Zhang,Dalin Shi,Minhan Dai,Shuh-Ji Kao +10 more
TL;DR: This work shows divergent thermal response patterns for marine AO across a wide onshore/offshore trophic gradient, finding ammonia oxidizer community and ambient substrate co-regulate optimum temperatures (Topt), generating distinct Thermal response patterns with Topt varying from ≤14 °C to ≥34C.