GENG X L, ZHANG D, LI C W, et al. Application and comparison of multiple models on agricultural sustainability assessments: a case study of the Yangtze River Delta urban agglomeration, China[J]. Sustainability, 2021, 13(1): 121.
WU Z S, WANG X L, CHEN Y W, et al. Assessing river water quality using water quality index in Lake Taihu Basin, China[J]. Science of the total environment, 2018, 612: 914-922.
LAMBERTH C. Latest research trends in agrochemical fungicides:any learnings for pharmaceutical antifungals?[J]. ACS medicinal chemistry letters, 2022, 13(6): 895-903.
OMWENGA I, KANJA L, ZOMER P, et al. Organophosphate and carbamate pesticide residues and accompanying risks in commonly consumed vegetables in Kenya[J]. Food additives & contaminants: part B, 2021, 14(1): 48-58.
TSALIDIS G A. Human health and ecosystem quality benefits with life cycle assessment due to fungicides elimination in agriculture[J]. Sustainability, 2022, 14(2): 846.
周启星, 王美娥. 土壤生态毒理学研究进展与展望[J]. 生态毒理学报, 2006, 1(1): 1-11. ZHOU Q X, WANG M E. Researching advancement and prospect of soil ecotoxicology[J]. Asian journal of ecotoxicology, 2006, 1(1): 1-11.
ONOJA S, ABDALLAH M A, HARRAD S. Concentrations, spatial and seasonal variations of organophosphate esters in UK freshwater sediment[J]. Emerging contaminants, 2023, 9(3): 100243.
OLSEN R L, CHAPPELL R W, LOFTIS J C. Water quality sample collection, data treatment and results presentation for principal components analysis—literature review and Illinois River watershed case study[J]. Water research, 2012, 46(9): 3110-3122.
BUSZEWSKI B, SZULTKA M. Past, present, and future of solid phase extraction: a review[J]. Critical reviews in analytical chemistry, 2012, 42(3): 198-213.
中华人民共和国生态环境部. 水质28种有机磷农药的测定气相色谱-质谱法: HJ 1189—2021[S]. 北京: 中国标准出版社, 2021: 1-32.
LIU W X, HE W, QIN N, et al. The residues, distribution, and partition of organochlorine pesticides in the water, suspended solids, and sediments from a large Chinese lake (Lake Chaohu) during the high water level period[J]. Environmental science and pollution research international, 2013, 20(4): 2033-2045.
WANMOHTAR W H M, ABDUL MAULUD K N, MUHAMMAD N S, et al. Spatial and temporal risk quotient based river assessment for water resources management[J]. Environmental pollution, 2019, 248: 133-144.
赵建亮, 应光国, 魏东斌, 等. 水体和沉积物中毒害污染物的生态风险评价方法体系研究进展[J]. 生态毒理学报, 2011, 6(6): 577-588. ZHAO J L, YING G G, WEI D B, et al. Ecological risk assessment methodology of toxic pollutants in surface water and sediments:a review[J]. Asian journal of ecotoxicology, 2011, 6(6): 577-588.
PETERSON R K. Comparing ecological risks of pesticides: the utility of a risk quotient ranking approach across refinements of exposure[J]. Pest management science, 2006, 62(1): 46-56.
LIU J, XIA W, WAN Y J, et al. Azole and strobilurin fungicides in source, treated, and tap water from Wuhan, Central China: assessment of human exposure potential[J]. Science of the total environment, 2021, 801: 149733.
WEI G L, WANG C, NIU W P, et al. Occurrence and risk assessment of currently used organophosphate pesticides in overlying water and surface sediments in Guangzhou urban waterways, China[J]. Environmental science and pollution research international, 2021, 28(35): 48194-48206.
WANG J, WANG Z R, DOU Y H, et al. Ecological risk assessment for typical organophosphorus pesticides in surface water of China based on a species sensitivity distribution model[J]. Science of the total environment, 2024, 913: 169805.
PEHKONEN S O, ZHANG Q. The degradation of organophosphorus pesticides in natural waters: a critical review[J]. Critical reviews in environmental science and technology, 2002, 32(1): 17-72.
XIONG C H, WANG G L, XU L T. Spatial differentiation identification of influencing factors of agricultural carbon productivity at city level in Taihu Lake Basin, China[J]. Science of the total environment, 2021, 800: 149610.
滕秀梅, 林亦平, 张斌. 农业经济发展及其支持政策建设的探究——以江苏农业政策发展为例[J]. 天津农业科学, 2016, 22(1): 57-62. TENG X M, LIN Y P, ZHANG B. Agricultural economy development and exploration of the construction of the support policy: Jiangsu agricultural policy development as an example[J]. Tianjin agricultural sciences, 2016, 22(1): 57-62.
刘垚燚. 土地利用与水系结构影响下的太湖流域水环境特征研究[D]. 上海: 华东师范大学, 2020: 73-83.
WANG T L, ZHONG M M, LU M L, et al. Occurrence, spatiotemporal distribution, and risk assessment of current-use pesticides in surface water: a case study near Taihu Lake, China[J]. Science of the total environment, 2021, 782: 146826.
ZHOU R R, LIU H Z, ZHANG Q, et al. Improvement of agricultural supply quality in China: evidence from Jiangsu Province[J]. Sustainability, 2023, 15(14): 11418.
GUO B Y, SUBRAHMANYAM M V, XUE S T. Editorial: hydrodynamic characteristics and pollutant transport in rivers and nearshore environments[J]. Frontiers in environmental science, 2024, 12: 1379032.
ZHAO S, WANG J H, FENG S J, et al. Effects of ecohydrological interfaces on migrations and transformations of pollutants: a critical review[J]. Science of the total environment, 2022, 804: 150140.
LIN F, REN H L, QIN J S, et al. Analysis of pollutant dispersion patterns in rivers under different rainfall based on an integrated water-land model[J]. Journal of environmental management, 2024, 354: 120314.
WANG X P, REN L L, LONG T, et al. Migration and remediation of organic liquid pollutants in porous soils and sedimentary rocks: a review[J]. Environmental chemistry letters, 2023, 21(1): 479-496.
FU C Z, WU J H, CHEN J K, et al. Freshwater fish biodiversity in the Yangtze River Basin of China: patterns, threats and conservation[J]. Biodiversity & conservation, 2003, 12(8): 1649-1685.
JOHANSSON M, PIHA H N, KYLIN H, et al. Toxicity of six pesticides to common frog (Rana temporaria) tadpoles[J]. Environmental toxicology and chemistry, 2006, 25(12): 3164-3170.
MOSTAFA F I Y, HELLING C S. Impact of four pesticides on the growth and metabolic activities of two photosynthetic algae[J]. Journal of environmental science and health, part B, 2002, 37(5): 417-444.