Legacy Effects of Late Macroalgal Blooms on Dissolved Inorganic Carbon Pool through Alkalinity Enhancement in Coastal Ocean.
暂无分享,去创建一个
N. Jiao | Tianqi Xiong | W. Zhai | Yongyu Zhang | Hong-mei Li | Yubin Hu | Liang Xue | Yufei Yue
[1] N. Jiao,et al. Green Tides Significantly Alter the Molecular Composition and Properties of Coastal DOC and Perform Dissolved Carbon Sequestration. , 2022, Environmental science & technology.
[2] Yifan Li,et al. A Massive Green Tide in the Yellow Sea in 2021: Field Investigation and Analysis , 2022, International journal of environmental research and public health.
[3] B. Eyre,et al. Production of dissolved carbon and alkalinity during macroalgal wrack degradation on beaches: a mesocosm experiment with implications for blue carbon , 2022, Biogeochemistry.
[4] C. Sanders,et al. Alkalinity export to the ocean is a major carbon sequestration mechanism in a macrotidal saltmarsh , 2022, Limnology and Oceanography.
[5] N. Jiao,et al. Carbon Sequestration in the Form of Recalcitrant Dissolved Organic Carbon in a Seaweed (Kelp) Farming Environment. , 2022, Environmental science & technology.
[6] W. Zhai,et al. Quasi-Synchronous Accumulation of Apparent Oxygen Utilization and Inorganic Carbon in the South Yellow Sea Cold Water Mass From Spring to Autumn: The Acidification Effect and Roles of Community Metabolic Processes, Water Mixing, and Spring Thermal State , 2022, Frontiers in Marine Science.
[7] Yongquan Yuan,et al. Green Tides in the Yellow Sea Promoted the Proliferation of Pelagophyte Aureococcus anophagefferens. , 2022, Environmental science & technology.
[8] Chao Yuan,et al. A new assessment of the algal biomass of green tide in the Yellow Sea. , 2021, Marine pollution bulletin.
[9] W. Cai,et al. Responses of the marine carbonate system to a green tide: A case study of an Ulva prolifera bloom in Qingdao coastal waters. , 2021, Harmful algae.
[10] B. Kelleher,et al. The influence of organic alkalinity on the carbonate system in coastal waters , 2021, Marine Chemistry.
[11] D. Burdige,et al. The renaissance of Odum's outwelling hypothesis in 'Blue Carbon' science , 2021, Estuarine, Coastal and Shelf Science.
[12] T. Ferdelman,et al. Kelp deposition changes mineralization pathways and microbial communities in a sandy beach , 2020, Limnology and Oceanography.
[13] Shuonan Liu,et al. Comparing Subsurface Seasonal Deoxygenation and Acidification in the Yellow Sea and Northern East China Sea Along the North-to-South Latitude Gradient , 2020, Frontiers in Marine Science.
[14] J. Chen,et al. DOC dynamics and bacterial community succession during long-term degradation of Ulva prolifera and their implications for the legacy effect of green tides on refractory DOC pool in seawater. , 2020, Water research.
[15] Xinyu Zhao,et al. Ecological effects of Ulva prolifera green tide on bacterial community structure in Qingdao offshore environment. , 2019, Chemosphere.
[16] Ying Bai,et al. Composition variations and spatiotemporal dynamics of dissolved organic matters during the occurrence of green tide (Ulva prolifera blooms) in the Southern Yellow Sea, China. , 2019, Marine pollution bulletin.
[17] Nathan R. Geraldi,et al. Important contribution of macroalgae to oceanic carbon sequestration , 2019, Nature Geoscience.
[18] Dongyan Liu,et al. Ulva prolifera green-tide outbreaks and their environmental impact in the Yellow Sea, China , 2019, National science review.
[19] J. Gattuso,et al. Routine uncertainty propagation for the marine carbon dioxide system , 2018, Marine Chemistry.
[20] Shengkang Liang,et al. Effects of Ulva prolifera blooms on the carbonate system in the coastal waters of Qingdao , 2018, Marine Ecology Progress Series.
[21] E. Achterberg,et al. On the influence of marine biogeochemical processes over CO2 exchange between the atmosphere and ocean , 2017 .
[22] W. Zhai,et al. Biogeochemical generation of dissolved inorganic carbon and nitrogen in the North Branch of inner Changjiang Estuary in a dry season , 2017 .
[23] Baoshan Chen,et al. Redox reactions and weak buffering capacity lead to acidification in the Chesapeake Bay , 2017, Nature Communications.
[24] Xuchen Wang,et al. Release and microbial degradation of dissolved organic matter (DOM) from the macroalgae Ulva prolifera. , 2017, Marine pollution bulletin.
[25] M. Charette,et al. Carbonate system biogeochemistry in a subterranean estuary – Waquoit Bay, USA , 2017 .
[26] N. Jiao,et al. Distributions and relationships of virio‐ and picoplankton in the epi‐, meso‐ and bathypelagic zones of the Western Pacific Ocean , 2017, FEMS microbiology ecology.
[27] C. Duarte,et al. Substantial role of macroalgae in marine carbon sequestration , 2016 .
[28] N. Ganju,et al. Intertidal salt marshes as an important source of inorganic carbon to the coastal ocean , 2016 .
[29] Y. Ko,et al. Organic alkalinity produced by phytoplankton and its effect on the computation of ocean carbon parameters , 2016 .
[30] B. Thamdrup,et al. Anaerobic Nitrogen Turnover by Sinking Diatom Aggregates at Varying Ambient Oxygen Levels , 2016, Front. Microbiol..
[31] Yan Li,et al. Cruise observation of Ulva prolifera bloom in the southern Yellow Sea, China , 2015 .
[32] Hong‐Hai Zhang,et al. The response of the carbonate system to a green algal bloom during the post-bloom period in the southern Yellow Sea , 2015 .
[33] Franck Dumas,et al. Modelling green macroalgal blooms on the coasts of Brittany, France to enhance water quality management , 2014 .
[34] Yi Xu,et al. Subsurface pH and carbonate saturation state of aragonite on the Chinese side of the North Yellow Sea: seasonal variations and controls , 2014 .
[35] Yujue Wang,et al. The world's largest macroalgal bloom in the Yellow Sea, China: Formation and implications , 2013 .
[36] M. Gehlen,et al. Dissolved inorganic carbon and alkalinity fluxes from coastal marine sediments: model estimates for different shelf environments and sensitivity to global change , 2012 .
[37] W. Cai,et al. Spatial distribution of riverine DOC inputs to the ocean: an updated global synthesis , 2012 .
[38] W. Cai,et al. The impact of denitrification on the atmospheric CO2 uptake potential of seawater , 2011 .
[39] C. Chen,et al. Chemical and physical fronts in the Bohai, Yellow and East China seas , 2009 .
[40] S. Wada,et al. Bioavailability of macroalgal dissolved organic matter in seawater , 2008 .
[41] A. Borges,et al. Enhanced ocean carbon storage from anaerobic alkalinity generation in coastal sediments , 2008 .
[42] A. Zirino,et al. Estimating the contribution of organic bases from microalgae to the titration alkalinity in coastal seawaters , 2007 .
[43] Dieter Wolf-Gladrow,et al. Total alkalinity: The explicit conservative expression and its application to biogeochemical processes , 2007 .
[44] F. Millero,et al. Dissociation constants of carbonic acid in seawater as a function of salinity and temperature , 2006 .
[45] W. Cai,et al. Carbon dioxide degassing and inorganic carbon export from a marsh‐dominated estuary (the Duplin River): A marsh CO2 pump , 2004 .
[46] B. Jørgensen,et al. Anoxic aggregates - an ephemeral phenomenon in the pelagic environment? , 1997 .
[47] Erik Bonsdorff,et al. Rapid zoobenthic community responses to accumulations of drifting algae , 1996 .
[48] M. Bender,et al. Fate of organic carbon reaching the deep sea floor: a status report☆ , 1984 .
[49] Bruce B. Benson,et al. The concentration and isotopic fractionation of oxygen dissolved in freshwater and seawater in equilibrium with the atmosphere1 , 1984 .
[50] J. Gieskes. EFFECT OF TEMPERATURE ON THE pH OF SEAWATER1 , 1969 .
[51] J. Tsou,et al. Investigating Spatial Distribution of Green-Tide in the Yellow Sea in 2021 Using Combined Optical and SAR Images , 2022 .