[1] KANTER D R, BARTOLINI F, KUGELBERG S, et al. Nitrogen pollution policy beyond the farm [J]. Nature Food, 2019, 1(1): 27−32.
[2] CHEN Wenjun, HE Bin, NOVER D, et al. Spatiotemporal patterns and source attribution of nitrogen pollution in a typical headwater agricultural watershed in southeastern China [J]. Environmental Science and Pollution Research, 2018, 25(3): 2756−2773.
[3] BERGER M, CANTY S W J, TUHOLSKE C, et al. Sources and discharge of nitrogen pollution from agriculture and wastewater in the Mesoamerican Reef region[J/OL]. Ocean & Coastal Management, 2022, 227: 106269[2024-06-01]. DOI: 10.1016/j.ocecoaman.2022.106269.
[4] SCHULTE-UEBBING L F, BEUSEN A W, BOUWMAN A F, et al. From planetary to regional boundaries for agricultural nitrogen pollution [J]. Nature, 2022, 610(7932): 507−512.
[5] KANTER D R, SEARCHINGER T D. A technology-forcing approach to reduce nitrogen pollution [J]. Nature Sustainability, 2018, 1(10): 544−552.
[6] 周佳林, 段婧婧, 王宁, 等. 陆生蔬菜浮床对富营养化水体氮磷的去除以及水体、根系细菌群落分析[J]. 生态与农村环境学报, 2024, 40(1): 107−118.

ZHOU Jialin, DUAN Jingjing, WANG Ning, et al. The removal of N and P by terrestrial vegetable floating beds in eutrophic waters and the microbiological analysis of water and root system [J]. Journal of Ecology and Rural Environment, 2024, 40(1): 107−118.
[7] 王诗绘, 马玉坤, 沈珍瑶. 氮氧稳定同位素技术用于水体中硝酸盐污染来源解析方面的研究进展[J]. 北京师范大学学报(自然科学版), 2021, 57(1): 36−42.

WANG Shihui, MA Yukun, SHEN Zhenyao. Identification of nitrate source in receiving water with dual NO3-isotopes [δ(15N) and δ(18O)] [J]. Journal of Beijing Normal University (Natural Science), 2021, 57(1): 36−42.
[8] 田寒梅, 盛欣, 王冰, 等. 2014—2019年某市农村地区自备井水中硝酸盐含量及影响因素分析[J]. 环境卫生学杂志, 2021, 11(5): 415−419.

TIAN Hanmei, SHENG Xin, WANG Bing, et al. Content of nitrates and its influencing factors in well water in rural areas of a city, 2014−2019 [J]. Journal of Environmental Hygiene, 2021, 11(5): 415−419.
[9] 何锦, 马雪梅, 邓启军, 等. 河北新生代玄武岩地下水中硝酸盐成因及健康风险评价[J/OL]. 中国地质, 2023-05-10[2024-06-01]. https://kns.cnki.net/kcms/detail/11.1167.P.20230510.1250.002.html.

HE Jin, MA Xuemei, DENG Qijun, et al. Spatial distribution, origin, and health risk assessment of nitrate in groundwater of Cenozoic basalts in Zhangbei County, Hebei Province[J/OL]. Geology in China, 2023-05-10[2024-06-01]. https://kns.cnki.net/kcms/detail/11.1167.P.20230510.1250.002.html.
[10] 杨丽, 何腾霞, 张漫漫, 等. 好氧反硝化细菌碳氮代谢特点及途径的研究进展[J]. 微生物学报, 2022, 62(12): 4781−4797.

YANG Li, HE Tengxia, ZHANG Manman, et al. Research progress in the characteristics and pathways of carbon and nitrogen metabolism of aerobic denitrifying bacteria [J]. Acta Microbiologica Sinica, 2022, 62(12): 4781−4797.
[11] ZOU Lilin, LIU Yansui, WANG Yongsheng, et al. Assessment and analysis of agricultural non-point source pollution loads in China: 1978–2017[J/OL]. Journal of Environmental Management, 2020, 263: 110400[2024-06-01]. DOI: 10.1016/j.jenvman.2020.110400.
[12] WANG Rongjia, WANG Qingbing, DONG Linshui, et al. Cleaner agricultural production in drinking-water source areas for the control of non-point source pollution in China[J/OL]. Journal of Environmental Management, 2021, 285: 112096[2024-06-01]. DOI: 10.1016/j.jenvman.2021.112096.
[13] 戴秀丽, 钱佩琪, 叶凉, 等. 太湖水体氮、磷浓度演变趋势(1985—2015年)[J]. 湖泊科学, 2016, 28(5): 935−943.

DAI Xiuli, QIAN Peiqi, YE Liang, et al. Changes in nitrogen and phosphorus concentrations in Lake Taihu, 1985−2015 [J]. Journal of Lake Sciences, 2016, 28(5): 935−943.
[14] 杨佳磊, 张瑞, 张银意, 等. 1980—2018年太湖流域非点源氮磷负荷变化研究[J]. 环境保护科学, 2022, 48(6): 93−101.

YANG Jialei, ZHANG Rui, ZHANG Yinyi, et al. Study on change of non-point source nitrogen and phosphorus load in Taihu Lake Basin from 1980 to 2018 [J]. Environmental Protection Science, 2022, 48(6): 93−101.
[15] WANG Rongjia, ZHANG Jianfeng, CAI Chunju, et al. How to control nitrogen and phosphorus loss during runoff process? –a case study at Fushi Reservoir in Anji County (China)[J/OL]. Ecological Indicators, 2023, 155: 111007[2024-06-01]. DOI: 10.1016/j.ecolind.2023.111007.
[16] 秦伯强. 水域生态系统过程与变化[M]. 北京: 高等教育出版社, 2019.

QIN Boqiang. Aquatic Ecosystem Processes and Changes [M]. Beijing: Higher Education Press, 2019.
[17] WANG Rongjia, ZHANG Jianfeng, CAI Chunju, et al. Mechanism of nitrogen loss driven by soil and water erosion in water source areas [J]. Journal of Forestry Research, 2023, 34(6): 1985−1995.
[18] 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, 1999: 28−35.

LU Rukun. Methods for Agricultural Chemical Analysis of Soil [M]. Beijing: China Agricultural Science and Technology Press, 1999: 28−35.
[19] 连心桥, 朱广伟, 杨文斌, 等. 强降雨对平原河网区入湖河道氮、磷影响[J]. 环境科学, 2020, 41(11): 4970−4980.

LIAN Xinqiao, ZHU Guangwei, YANG Wenbin, et al. Effect of heavy rainfall on nitrogen and phosphorus concentrations in rivers at river-net plain [J]. Environmental Science, 2020, 41(11): 4970−4980.
[20] 曾杰, 吴起鑫, 李思亮, 等. 雨季喀斯特小流域氮输出特征及其受降雨的影响[J]. 水土保持学报, 2017, 31(3): 73−78.

ZENG Jie, WU Qixin, LI Siliang, et al. Characteristics of nitrogen export and the effects of rainfall during the rainy season in a karst small catchment [J]. Journal of Soil and Water Conservation, 2017, 31(3): 73−78.
[21] 薛鹏程, 庞燕, 项颂, 等. 模拟降雨条件下农田氮素径流流失特征研究[J]. 农业环境科学学报, 2017, 36(7): 1362−1368.

XUE Pengcheng, PANG Yan, XIANG Song, et al. Nitrogen loss characteristics of farmland runoff under simulated precipitation conditions [J]. Journal of Agro-Environment Science, 2017, 36(7): 1362−1368.
[22] 范雅双, 于婉晴, 张婧, 等. 太湖上游水源区河流水质对景观格局变化的响应关系——以东苕溪上游为例[J]. 湖泊科学, 2021, 33(5): 1478−1489.

FAN Yashuang, YU Wanqing, ZHANG Jing, et al. Response of water quality to landscape pattern change in the water source area of upper reaches of Lake Taihu: a case study in the upper reaches of Dongtiaoxi River [J]. Journal of Lake Sciences, 2021, 33(5): 1478−1489.
[23] 连慧姝, 刘宏斌, 李旭东, 等. 典型入湖河流水体氮素变化特征及其对降雨的响应: 以太湖乌溪港为例[J]. 环境科学, 2017, 38(12): 5047−5055.

LIAN Huishu, LIU Hongbin, LI Xudong, et al. Characteristics of nitrogen variation and its response to rainfall: a case study in Wuxi Port at Taihu Lake basin [J]. Environmental Science, 2017, 38(12): 5047−5055.
[24] ZHANG Jing, LI Siyue, JIANG Changsheng. Effects of land use on water quality in a River Basin (Daning) of the Three Gorges Reservoir Area, China: watershed versus riparian zone[J/OL]. Ecological Indicators, 2020, 113: 106226[2024-06-01]. DOI: 10.1016/j.ecolind.2020.106226.
[25] SHI Peng, ZHANG Yan, LI Zhanbin, et al. Influence of land use and land cover patterns on seasonal water quality at multi-spatial scales [J]. CATENA, 2017, 151: 182−190.
[26] 张崑, 徐坚, 鲁长根, 等. 不同施肥对稻-菜种植模式氮磷吸收及径流流失的影响[J]. 浙江农林大学学报, 2021, 38(4): 784−791.

ZHANG Kun, XU Jian, LU Changgen, et al. Effects of different fertilizer types on nitrogen and phosphorus nutrient absorption and runoff loss in rice-vegetable rotation system [J]. Journal of Zhejiang A&F University, 2021, 38(4): 784−791.
[27] 杨旭斌, 邵建均, 应珊珊, 等. 浙江省生态沟渠对农业面源污染物的去除效果[J]. 浙江农林大学学报, 2024, 41(6): 1233−1241.

YANG Xubin, SHAO Jianjun, YING Shanshan, et al. Removal effect of ecological ditches on agricultural non-point source pollutants in Zhejiang Province [J]. Journal of Zhejiang A&F University, 2024, 41(6): 1233−1241.
[28] 刘伸伸, 张震, 何金铃, 等. 水生植物对氮磷及重金属污染水体的净化作用[J]. 浙江农林大学学报, 2016, 33(5): 910−919.

LIU Shenshen, ZHANG Zhen, HE Jinling, et al. Purification effect of aquatic plants on nitrogen, phosphorus and heavy metal polluted water [J]. Journal of Zhejiang A&F University, 2016, 33(5): 910−919.
[29] 龚苗苗, 蔡飞翔, 姜培坤, 等. 沉水植物型生态净化系统处理农田退水的总磷去除动力学研究[J]. 浙江农林大学学报, 2022, 39(1): 136−145.

GONG Miaomiao, CAI Feixiang, JIANG Peikun, et al. Kinetic modeling of total phosphorus removal from farmland drainage with submerged macrophyte-type ecological purification system [J]. Journal of Zhejiang A&F University, 2022, 39(1): 136−145.