[1] 张卫国,贾铁飞,陆敏,等. 长江口水下三角洲Y7柱样磁性特征及其影响因素[J]. 第四纪研究,2007,27(6):1063-1071.

Zhang Weiguo, Jia Tiefei, Lu Min, et al. Magnetic properties of core Y7 from subaqueous delta of the Changjiang Estuary and their influencing factors[J]. Quaternary Sciences, 2007, 27(6): 1063-1071.
[2] Dong C Y, Zhang W G, Ma H L, et al. A magnetic record of heavy metal pollution in the Yangtze River subaqueous delta[J]. Science of the Total Environment, 2014, 476-477: 368-377.
[3] Ge C, Zhang W G, Dong C Y, et al. Tracing sediment erosion in the Yangtze River subaqueous delta using magnetic methods[J]. Journal of Geophysical Research: Earth Surface, 2017, 122(11): 2064-2078.
[4] Ge C, Zhang W G, Dong C Y, et al. Magnetic mineral diagenesis in the river-dominated inner shelf of the East China Sea, China[J]. Journal of Geophysical Research: Solid Earth, 2015, 120(7): 4720-4733.
[5] 陈吉余,恽才兴,徐海根,等. 两千年来长江河口发育的模式[J]. 海洋学报,1979,1(1):103-111.

Chen Jiyu, Yun Caixing, Xu Haigen, et al. The developmental model of the Chang Jiang River Estuary during last 2000 years[J]. Acta Oceanologica Sinica, 1979, 1(1): 103-111.
[6] 陈吉余,沈焕庭,恽才兴,等. 长江河口动力过程和地貌演变[M]. 上海:上海科学技术出版社,1988:48-62.

Chen Jiyu, Shen Huanting, Yun Caixing, et al. Process of dynamics and geomorphology of the Changjiang Estuary[M]. Shanghai: Shanghai Scientific and Technical Press, 1988: 48-62.
[7] Wei T Y, Chen Z Y, Duan L Y, et al. Sedimentation rates in relation to sedimentary processes of the Yangtze Estuary, China[J]. Estuarine, Coastal and Shelf Science, 2007, 71(1/2): 37-46.
[8] 鲁如坤. 土壤农业化学分析方法[M]. 北京:中国农业科技出版社,2000.

Lu Rukun. Soil and agricultural chemistry analysis method[M]. Beijing: China Agricultural Science and Technology Press, 2000.
[9] Bloemendal J, King J W, Hall F R, et al. Rock magnetism of Late Neogene and Pleistocene deep-sea sediments: Relationship to sediment source, diagenetic processes, and sediment lithology[J]. Journal of Geophysical Research: Solid Earth, 1992, 97(B4): 4361-4375.
[10] Thompson R, Oldfield F. Environmental magnetism[M]. London: Allen and Unwin, 1986.
[11] Maher B A. Magnetic properties of some synthetic sub-micron magnetites[J]. Geophysical Journal International, 1988, 94(1): 83-96.
[12] Kruiver P P, Dekkers M J, Heslop D. Quantification of magnetic coercivity components by the analysis of acquisition curves of isothermal remanent magnetisation[J]. Earth and Planetary Science Letters, 2001, 189(3/4): 269-276.
[13] Yamazaki T, Ikehara. Origin of magnetic mineral concentration variation in the southern Ocean[J]. Paleoceanography, 2012, 27(2): PA2206.
[14] Pike C R, Roberts A P, Verosub K L. Characterizing interactions in fine magnetic particle systems using first order reversal curves[J]. Journal of Applied Physics, 1999, 85(9): 6660-6667.
[15] Roberts A P, Pike C R, Verosub K L. First-order reversal curve diagrams: A new tool for characterizing the magnetic properties of natural samples[J]. Journal of Geophysical Research: Solid Earth, 2000, 105(B12): 28461-28475.
[16] Harrison R J, Feinberg J M. FORCinel: An improved algorithm for calculating first-order reversal curve distributions using locally weighted regression smoothing[J]. Geochemistry, Geophysics, Geosystems, 2008, 9(5): Q05016.
[17] Cheng Q Z, Wang F, Chen Jet al.Combined chronological and mineral magnetic approaches to reveal age variations and stratigraphic heterogeneity in the Yangtze River subaqueous delta[J].Geomorphology, 2020,359:107-163.
[18] Sugisaki S, Buylaert J P, Murray A, et al. OSL dating of fine-grained quartz from Holocene Yangtze delta sediments[J]. Quaternary Geochronology, 2015, 30: 226-232.
[19] Rowan C J, Roberts A P, Broadbent T. Reductive diagenesis, magnetite dissolution, greigite growth and paleomagnetic smoothing in marine sediments: A new view[J]. Earth and Planetary Science Letters, 2009, 277(1/2): 223-235.
[20] 葛灿. 长江口—东海内陆架沉积物磁性特征及其指示意义[D]. 上海:华东师范大学,2018.

Ge Can. Magnetic properties of sediments in the Yangtze Estuary and adjacent inner shelf of the East China Sea and their environmental implications[D]. Shanghai: East China Normal University, 2018.
[21] Dong Y, Zhang W G, Dong C Y, et al. Magnetic and diffuse reflectance spectroscopic characterization of iron oxides in the tidal flat sequence from the coastal plain of Jiangsu province, China[J]. Geophysical Journal International, 2014, 196(1): 175-188.
[22] Roberts A P, Liu Q S, Rowan C J, et al. Characterization of hematite (α‐Fe2O3), goethite (α‐FeOOH), greigite (Fe3S4), and pyrrhotite (Fe7S8) using first‐order reversal curve diagrams[J]. Journal of Geophysical Research: Solid Earth, 2006, 111(B12): B12S35.
[23] Chang L, Roberts A P, Muxworthy A R, et al. Magnetic characteristics of synthetic pseudo-single-domain and multi-domain greigite (Fe3S4)[J]. Geophysical Research Letters, 2007, 34(24): L24304.
[24] Hilton J. Greigite and the magnetic properties of sediments[J]. Limnology and Oceanography, 1990, 35(2): 509-520.
[25] Snowball I F. Magnetic hysteresis properties of greigite (Fe3S4) and a new occurrence in Holocene sediments from Swedish Lappland[J]. Physics of the Earth and Planetary Interiors, 1991, 68(1/2): 32-40.
[26] Roberts A P. Magnetic properties of sedimentary greigite (Fe3S4)[J]. Earth and Planetary Science Letters, 1995, 134(3/4): 227-236.
[27] Zhang W G, Yu L Z. Magnetic properties of tidal flat sediments of the Yangtze Estuary and its relationship with particle size[J]. Science in China Series D: Earth Sciences, 2003, 46(9): 954-966.
[28] 葛淑兰,石学法,吴永华,等. 冲绳海槽北部CSH1孔岩石磁学特征及其早期成岩作用的影响[J]. 海洋学报,2005,27(6):56-64.

Ge Shulan, Shi Xuefa, Wu Yonghua, et al. The rock magnetic behavior of gravity core CSH1 from the northern Okinawa Trough and the effect of early diagenesis[J]. Acta Oceanologica Sinica, 2005, 27(6): 56-64.
[29] 胡忠行,张卫国,董成寅,等. 东海内陆架沉积物磁性特征对早期成岩作用的响应[J]. 第四纪研究,2012,32(4):670-678.

Hu Zhongxing, Zhang Weiguo, Dong Chengyin, et al. Influence of early diagenesis on magnetic properties of inner shelf deposits of the East China Sea[J]. Quaternary Sciences, 2012, 32(4): 670-678.
[30] Dewangan P, Basavaiah N, Badesab F K, et al. Diagenesis of magnetic minerals in a gas hydrate/cold seep environment off the Krishna-Godavari basin, bay of Bengal[J]. Marine Geology, 2013, 340: 57-70.
[31] Robinson S G, Sahota J T S, Oldfield F. Early diagenesis in North Atlantic abyssal plain sediments characterized by rock-magnetic and geochemical indices[J]. Marine Geology, 2000, 163(1/2/3/4): 77-107.
[32] Zhu M X, Chen K K, Yang G P, et al. Sulfur and iron diagenesis in temperate unsteady sediments of the East China Sea inner shelf and a comparison with tropical mobile mud belts (MMBs)[J]. Journal of Geophysical Research: Biogeosciences, 2016, 121(11): 2811-2828.
[33] 徐桂茹. 沉积物中硫的形态分析及其应用[D]. 上海:华东师范大学,2016.

Xu Guiru. Speciation analysis of sulfur in sediments and its applications[D]. Shanghai: East China Normal University, 2016.
[34] Aller R C, Madrid V, Chistoserdov A, et al. Unsteady diagenetic processes and sulfur biogeochemistry in tropical deltaic muds: Implications for oceanic isotope cycles and the sedimentary record[J]. Geochimica et Cosmochimica Acta, 2010, 74(16): 4671-4692.
[35] Liu X T, Fike D, Li A C, et al. Pyrite sulfur isotopes constrained by sedimentation rates: Evidence from sediments on the East China Sea inner shelf since the Late Pleistocene[J]. Chemical Geology, 2019, 505: 66-75.
[36] Xu T Y, Wang G Q, Shi X F, et al. Sequence stratigraphy of the subaqueous Changjiang (Yangtze River) delta since the Last Glacial Maximum[J]. Sedimentary Geology, 2016, 331: 132-147.
[37] Lin Z Y, Sun X M, Peckmann J, et al. How sulfate-driven anaerobic oxidation of methane affects the sulfur isotopic composition of pyrite: A SIMS study from the South China Sea[J]. Chemical Geology, 2016, 440: 26-41.
[38] 吴自军,任德章,彭晓彤. 海洋沉积物甲烷厌氧氧化作用(AOM)及其对无机硫循环的影响[J]. 地球科学进展,2013,28(7):765-773.

Wu Zijun, Ren Dezhang, Peng Xiaotong. Anaerobic oxidation of methane (AOM) and its influence on inorganic sulfur cycle in marine sediments[J]. Advances in Earth Science, 2013, 28(7): 765-773.
[39] 郑永飞,陈江峰. 稳定同位素地球化学[M]. 北京:科学出版社,2000:218-231.

Zheng Yongfei, Chen Jiangfeng. Stable isotope geochemistry[M]. Beijing: Science Press, 2000: 218-231.
[40] 张伟,刘丛强,梁小兵,等. 硫同位素分馏中的生物作用及其环境效应[J]. 地球与环境,2007,35(3):223-227.

Zhang Wei, Liu Congqiang, Liang Xiaobing, et al. Biological function in sulfur isotope fractionation and environmental effect[J]. Earth and Environment, 2007, 35(3): 223-227.