Xing L, Zhao M X, Zhang H L, et al. Biomarker evidence for paleoenvironmental changes in the southern Yellow Sea over the last 8200 years[J]. Chinese Journal of Oceanology and Limnology, 2012, 30(1): 1-11.
[2]
Zimmerman A R, Canuel E A. Sediment geochemical records of eutrophication in the mesohaline Chesapeake Bay[J]. Limnology and Oceanography, 2002, 47: 1084-1093.
[3]
Marlowe I T, Brassell S C, Eglinton G, et al. Long-chain alkenones and alkyl alkenoates and the fossil coccolith record of marine sediments[J]. Chemical Geology, 1990, 88: 349-375.
[4]
Jeng W L, Huh C A. Lipids in suspended matter and sediments from the East China Sea Shelf[J]. Organic Geochemistry, 2004, 35: 647-660.
Feng Xuwen, Jing Xianglong, Yu Xiaoguo, et al. Sedimentary records of eutrophication in the Changjiang Estuary upwelling area over last 100 years[J]. Acta Oceanologica Sinica, 2008, 27(6):1-13.
Wang B. Cultural eutrophication in the Changjiang (Yangtze River) plume: History and perspective[J]. Estuarine, Coastal and Shelf Science, 2006, 69: 471-477.
Versteegh G J M, Zonneveld K A F. Use of selective degradation to separate preservation from productivity[J]. Geology, 2002, 30 (7): 615-618.
[15]
Ning X, Lin C, Su J, et al. Long-term changes of dissolved oxygen, hypoxia, and the responses of the ecosystems in the East China Sea from 1975 to 1995[J]. Journal of Oceanography, 2011, 76(1): 59-75.
[16]
Egge J K, Aksnes D L. Silicate as regulating nutrient in phytoplankton competition[J]. Marine Ecology-Progress Series, 1992, 83(2): 281-289.
[17]
Falkowski P, Oliver M. Mix and match: how climate selects phytoplankton[J]. Nature reviews Microbiology, 2007, 5(10): 813-819.
[18]
Seki O, Ikehara M, Kawamura K, et al. Reconstruction of paleoproductivity in the Sea of Okhotsk over the last 30 kyr[J]. Paleoceanography, 2004, 19(1):1016.
[19]
Schubert C J, Villanueva J, Calvert S E, et al. Stable phytoplankton community structure in the Arabian Sea over the last 200, 000 year[J]. Nature, 1998, 394(6693): 563-566.
[20]
Hu Jianfang, Zhang Gan, Li Kechang, et al. Increased eutrophication offshore Hong Kong, China during the past 75 years: Evidence from high-resolution sedimentary records[J]. Marine Chemistry, 2008, 110: 7-17.
Zhu Z Y, Zhang J, Wu Y, et al. Hypoxia off the Changjiang (Yangtze River) Estuary: Oxygen depletion and organic matter decomposition[J]. Marine Chemistry, 2011, 125: 108-116.
Jin Haiyan, Chen Jianfang, Weng Huanxin, et al. Variations in paleoproductivity and the environmental implications over the past six decades in the Changjiang Estuary[J]. Acta Oceanologica Sinica, 2010, 29(3): 38-45.
Volkman J K, Barrett S M, Blackburn S I, et al. Microalgal biomarkers: a review of recent research developments[J]. Org Geochem, 1998, 29: 1163-1179
[28]
Gao S, Wang Y P. Changes in material fluxes from the Changjiang River and their implications on the adjoining continental shelf ecosystem[J]. Continental Shelf Research, 2008, 28: 1490-1500.
[29]
Hinrichs K U, Schneider R, Muller P, et al. A biomarker perspective on paleoproductivity variations in two Late Quaternary sediment sections from the Southeast Atlantic Ocean[J]. Organic Geochemistry, 1999, 30 (5): 341-366.
Zhou M J, Shen Z L, Yu R C. Responses of a coastal phytoplankton community to increased nutrient in put from the Changjiang (Yangtze) River[J]. Continental Shelf Research, 2008, 28: 1483-1489.
[32]
Smayda T J. Novel and nuisance phytoplankton blooms in the sea: evidence for a global epidemic[M]. // Grane li, Sundstrom E, Edler B, et al. Toxic Marine Phytoplankton. Elsevier, New York, 1990, 29-40.