Monsoon-driven biogeochemical dynamics in an equatorial shelf sea: time-series observations in the Singapore Strait
暂无分享,去创建一个
Patrick Martin | Mengli Chen | H. Ren | M. Moynihan | Shuangwu Chen | Oon Yee Woo | Yongli Zhou | R. Nichols | Kristy Chang | Ashleen S. Y. Tan | K. Chang | Ying-Hsuan Chen
[1] C. Evans,et al. Rising dissolved organic carbon concentrations in coastal waters of northwestern Borneo related to tropical peatland conversion , 2022, Science advances.
[2] Shan Jiang,et al. Nutrient cycling in tropical and temperate coastal waters: Is latitude making a difference? , 2021, Estuarine, Coastal and Shelf Science.
[3] F. Lauro,et al. Coral-associated nitrogen fixation rates and diazotrophic diversity on a nutrient-replete equatorial reef , 2021, The ISME journal.
[4] D. McDougald,et al. Differential Response of the Microbiome of Pocillopora acuta to Reciprocal Transplantation Within Singapore , 2021, Microbial Ecology.
[5] Lirong Song,et al. Blooms of diatom and dinoflagellate associated with nutrient imbalance driven by cycling of nitrogen and phosphorus in anaerobic sediments in Johor Strait (Malaysia). , 2021, Marine environmental research.
[6] C. Evans,et al. Extensive remineralization of peatland-derived dissolved organic carbon and acidification in the Sunda Shelf Sea, Southeast Asia , 2021, Journal of Geophysical Research: Oceans.
[7] A. Oschlies,et al. Description of a global marine particulate organic carbon-13 isotope data set , 2021, Earth System Science Data.
[8] R. Nichols,et al. Low Biodegradability of Dissolved Organic Matter From Southeast Asian Peat‐Draining Rivers , 2021, Journal of Geophysical Research: Biogeosciences.
[9] S. Sjögersten,et al. Degradation of Southeast Asian tropical peatlands and integrated strategies for their better management and restoration , 2021 .
[10] L. McKinna,et al. Coloured dissolved organic matter dynamics in the Great Barrier Reef , 2021 .
[11] Soo Chin Liew,et al. Dissolved organic matter from tropical peatlands reduces shelf sea light availability in the Singapore Strait, Southeast Asia , 2021, Marine Ecology Progress Series.
[12] D. Sigman,et al. Dissolved Organic Nitrogen Cycling in the South China Sea From an Isotopic Perspective , 2020, Global Biogeochemical Cycles.
[13] A. Switzer,et al. Light Limitation and Depth-Variable Sedimentation Drives Vertical Reef Compression on Turbid Coral Reefs , 2020, Frontiers in Marine Science.
[14] A. Vieillard,et al. Recovering From Bias: A Call for Further Study of Underrepresented Tropical and Low‐Nutrient Estuaries , 2020, Journal of Geophysical Research: Biogeosciences.
[15] C. Bong,et al. Investigating factors driving phytoplankton growth and grazing loss rates in waters around Peninsular Malaysia , 2020, Journal of Oceanology and Limnology.
[16] G. Le Roux,et al. From canals to the coast: dissolved organic matter and trace metal composition in rivers draining degraded tropical peatlands in Indonesia , 2020 .
[17] Jun Sun,et al. Surface Phytoplankton Assemblages and Controlling Factors in the Strait of Malacca and Sunda Shelf , 2020, Frontiers in Marine Science.
[18] Cong-Qiang Liu,et al. Nitrate sources and formation of rainwater constrained by dual isotopes in Southeast Asia: Example from Singapore. , 2020, Chemosphere.
[19] F. Lauro,et al. Temporal and spatial dynamics of Bacteria, Archaea and protists in equatorial coastal waters , 2019, Scientific Reports.
[20] Shan Jiang,et al. Dissolved inorganic nitrogen in a tropical estuary in Malaysia: transport and transformation , 2019, Biogeosciences.
[21] Patrick Martin,et al. Composition and cycling of dissolved organic matter from tropical peatlands of coastal Sarawak, Borneo, revealed by fluorescence spectroscopy and parallel factor analysis , 2019, Biogeosciences.
[22] Peter A. Todd,et al. Towards an urban marine ecology: characterizing the drivers, patterns and processes of marine ecosystems in coastal cities , 2019, Oikos.
[23] H. Bange,et al. Nitrous oxide (N2O) and methane (CH4) in rivers and estuaries of northwestern Borneo , 2019, Biogeosciences.
[24] Janet Sprintall,et al. Maritime Continent water cycle regulates low-latitude chokepoint of global ocean circulation , 2019, Nature Communications.
[25] F. Colijn,et al. The eutrophication states of the Indonesian sea large marine ecosystem: Jakarta Bay, 2001–2013 , 2019, Deep Sea Research Part II: Topical Studies in Oceanography.
[26] E. Boyle,et al. Multi-colony coral skeletal Ba/Ca from Singapore’s turbid urban reefs: Relationship with contemporaneous in-situ seawater parameters , 2019, Geochimica et Cosmochimica Acta.
[27] K. Calvin,et al. Societal decisions about climate mitigation will have dramatic impacts on eutrophication in the 21st century , 2019, Nature Communications.
[28] H. Page,et al. Spatiotemporal variability in seawater carbon chemistry for a coral reef flat in Kāne‘ohe Bay, Hawai‘i , 2018, Limnology and Oceanography.
[29] Patrick Martin,et al. Distribution and cycling of terrigenous dissolved organic carbon in peatland-draining rivers and coastal waters of Sarawak, Borneo , 2018, Biogeosciences.
[30] T. Rixen,et al. The Invisible Carbon Footprint as a hidden impact of peatland degradation inducing marine carbonate dissolution in Sumatra, Indonesia , 2018, Scientific Reports.
[31] Suharsono,et al. Urban coral reefs: Degradation and resilience of hard coral assemblages in coastal cities of East and Southeast Asia. , 2018, Marine pollution bulletin.
[32] H. Siegel,et al. Remote Sensing of Coastal Discharge of SE Sumatra (Indonesia) , 2018, Remote Sensing of the Asian Seas.
[33] T. Pohlmann,et al. The Spatial and Temporal Variability of Air-Sea CO2 Fluxes and the Effect of Net Coral Reef Calcification in the Indonesian Seas: A Numerical Sensitivity Study , 2018, Front. Mar. Sci..
[34] B. Hales,et al. Seagrass habitat metabolism increases short-term extremes and long-term offset of CO2 under future ocean acidification , 2018, Proceedings of the National Academy of Sciences.
[35] X. Álvarez‐Salgado,et al. Organic matter bioavailability in tropical coastal waters: The Great Barrier Reef , 2018 .
[36] Y. A. Affendi,et al. Distributions of particulate and dissolved phosphorus in aquatic habitats of Peninsular Malaysia. , 2018, Marine pollution bulletin.
[37] H. Wehrden,et al. A Sustainability Agenda for Tropical Marine Science , 2018 .
[38] G. Haug,et al. Impact of glacial/interglacial sea level change on the ocean nitrogen cycle , 2017, Proceedings of the National Academy of Sciences.
[39] H. Tseng,et al. Riverine carbon fluxes to the South China Sea , 2017 .
[40] Tingjin Zhou,et al. Determination of total phosphorus in natural waters with a simple neutral digestion method using sodium persulfate , 2017 .
[41] J. Hollibaugh,et al. Temperature Decouples Ammonium and Nitrite Oxidation in Coastal Waters. , 2017, Environmental science & technology.
[42] K. Shamberger,et al. Community production modulates coral reef pH and the sensitivity of ecosystem calcification to ocean acidification , 2017 .
[43] Andreas Oschlies,et al. Modeled Chl:C ratio and derived estimates of phytoplankton carbon biomass and its contribution to total particulate organic carbon in the global surface ocean , 2016 .
[44] A. Campbell,et al. 27 years of benthic and coral community dynamics on turbid, highly urbanised reefs off Singapore , 2016, Scientific Reports.
[45] D. Susanto,et al. Oceanography Surrounding Krakatau Volcano in the Sunda Strait, Indonesia , 2016 .
[46] K. Nadaoka,et al. CO2 Sink/Source Characteristics in the Tropical Indonesian Seas , 2015 .
[47] K. Caldeira,et al. Coral reef metabolism and carbon chemistry dynamics of a coral reef flat , 2015 .
[48] I. Kudo,et al. Temporal variation of phytoplankton growth and grazing loss in the west coast of Peninsular Malaysia , 2015, Environmental Monitoring and Assessment.
[49] P. Todd,et al. Fluctuations in coral health of four common inshore reef corals in response to seasonal and anthropogenic changes in water quality. , 2015, Marine environmental research.
[50] S. Page,et al. Contrasting vulnerability of drained tropical and high‐latitude peatlands to fluvial loss of stored carbon , 2014 .
[51] Songbo Wang,et al. Effects of surface current patterns on spatial variations of phytoplankton community and environmental factors in Sunda shelf , 2014 .
[52] T. Rixen,et al. Dissolved Inorganic Nitrogen and Phosphate in the Human Affected Blackwater River Siak, Central Sumatra, Indonesia , 2014 .
[53] B. Lapointe,et al. Evidence of Large-Scale Chronic Eutrophication in the Great Barrier Reef: Quantification of Chlorophyll a Thresholds for Sustaining Coral Reef Communities , 2014, AMBIO.
[54] T. Toda,et al. Monsoon variability of ultraviolet radiation (UVR) attenuation and bio-optical factors in the Asian tropical coral-reef waters , 2013 .
[55] Chris D. Evans,et al. Deep instability of deforested tropical peatlands revealed by fluvial organic carbon fluxes , 2013, Nature.
[56] Graeme Curwen,et al. Controls on phytoplankton productivity in a wet–dry tropical estuary , 2012 .
[57] T. Jennerjahn,et al. Biogeochemical response of tropical coastal systems to present and past environmental change , 2012 .
[58] W. Cai,et al. Spatial distribution of riverine DOC inputs to the ocean: an updated global synthesis , 2012 .
[59] D. S. van Maren,et al. Residual flow and tidal asymmetry in the Singapore Strait, with implications for resuspension and residual transport of sediment , 2012 .
[60] Steven E. Lohrenz,et al. Acidification of subsurface coastal waters enhanced by eutrophication , 2011 .
[61] R. Balasubramanian,et al. Impact of biomass burning on ocean water quality in Southeast Asia through atmospheric deposition: eutrophication modeling , 2010 .
[62] Carolien Kroeze,et al. Global Nutrient Export from WaterSheds 2 (NEWS 2): Model development and implementation , 2010, Environ. Model. Softw..
[63] T. Toda,et al. Spatial variability of UVR attenuation and bio-optical factors in shallow coral-reef waters of Malaysia , 2010, Coral Reefs.
[64] Alison Green,et al. Delineating the Coral Triangle , 2009 .
[65] Danwei Huang,et al. AN INVENTORY OF ZOOXANTHELLATE SCLERACTINIAN CORALS IN SINGAPORE, INCLUDING 33 NEW RECORDS , 2009 .
[66] M. Burford,et al. Primary production and nutrients in a tropical macrotidal estuary, Darwin Harbour, Australia , 2008 .
[67] E. Elliott,et al. Tracing Anthropogenic Inputs of Nitrogen to Ecosystems , 2008 .
[68] H. Hansen,et al. Determination of nutrients , 2007 .
[69] T. Jennerjahn,et al. Biogeochemistry of the Dumai River estuary, Sumatra, Indonesia, a tropical black‐water river , 2007 .
[70] Tiffany G. Troxler,et al. Patterns of phosphorus, nitrogen and δ15N along a peat development gradient in a coastal mire, Panama , 2007, Journal of Tropical Ecology.
[71] T. Rixen,et al. Relevance of peat draining rivers in central Sumatra for the riverine input of dissolved organic carbon into the ocean , 2007 .
[72] S. Zhang,et al. Phytoplankton Structure in the Tropical Port Waters of Singapore , 2006 .
[73] J. Brodie,et al. In the other 90%: phytoplankton responses to enhanced nutrient availability in the Great Barrier Reef Lagoon. , 2005, Marine pollution bulletin.
[74] Huijie Xue,et al. Physical-Biological Oceanographic Coupling Influencing Phytoplankton and Primary Production in the South China Sea , 2004 .
[75] V. Ittekkot,et al. Biogeochemistry of a tropical river affected by human activities in its catchment: Brantas River estuary and coastal waters of Madura Strait, Java, Indonesia , 2004 .
[76] K. Gin,et al. Phytoplankton community structure in Singapore's coastal waters using HPLC pigment analysis and flow cytometry , 2003 .
[77] C. Barford,et al. A bacterial method for the nitrogen isotopic analysis of nitrate in seawater and freshwater. , 2001, Analytical chemistry.
[78] Bradley D. Eyre,et al. Regional evaluation of nutrient transformation and phytoplankton growth in nine river-dominated sub-tropical east Australian estuaries , 2000 .
[79] Sheng Zhang,et al. Dynamics and size structure of phytoplankton in the coastal waters of Singapore , 2000 .
[80] C. D. Keeling,et al. Ocean pCO2 calculated from dissolved inorganic carbon, alkalinity, and equations for K1 and K2: validation based on laboratory measurements of CO2 in gas and seawater at equilibrium , 2000 .
[81] J. Chanton,et al. Plankton and dissolved inorganic carbon isotopic composition in a river-dominated estuary: Apalachicola Bay, Florida , 1999 .
[82] Roger Kerouel,et al. Fluorometric determination of ammonia in sea and estuarine waters by direct segmented flow analysis , 1997 .
[83] T. Kana,et al. Dynamic model of phytoplankton growth and acclimation: responses of the balanced growth rate and the chlorophyll a:carbon ratio to light, nutrient-limitation and temperature , 1997 .
[84] C. Nittrouer,et al. Importance of tropical coastal environments , 1995 .
[85] Sarah A. Green,et al. Optical absorption and fluorescence properties of chromophoric dissolved organic matter in natural waters , 1994 .
[86] N. Welschmeyer. Fluorometric analysis of chlorophyll a in the presence of chlorophyll b and pheopigments , 1994 .
[87] M. Frankignoulle. A complete set of buffer factors for acid/base CO2 system in seawater , 1994 .
[88] Louis I. Gordon,et al. Oxygen solubility in seawater : better fitting equations , 1992 .
[89] P. Bell,et al. Eutrophication and coral reefs—some examples in the Great Barrier Reef lagoon , 1992 .
[90] A. Dickson. Standard potential of the reaction: , and and the standard acidity constant of the ion HSO4− in synthetic sea water from 273.15 to 318.15 K , 1990 .
[91] B. Fry,et al. δ13C Measurements as Indicators of Carbon Flow in Marine and Freshwater Ecosystems , 1989 .
[92] F. F. Pérèz,et al. Association constant of fluoride and hydrogen ions in seawater , 1987 .
[93] L. Uppström. The boron/chlorinity ratio of deep-sea water from the Pacific Ocean , 1974 .