Nitrogen in soil, manure and sewage has become a major challenge in controlling nitrate pollution in groundwater around plateau lakes, Southwest China
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[1] Hongyuan Wang,et al. Shifts in the sources and fates of nitrate in shallow groundwater caused by agricultural intensification intensity: Revealed by hydrochemistry, stable isotopic composition and source contribution , 2023, Agriculture, Ecosystems & Environment.
[2] Anqiang Chen,et al. [Shallow Groundwater Around Plateau Lakes: Spatiotemporal Distribution of Nitrogen and Its Driving Factors]. , 2022, Huan jing ke xue= Huanjing kexue.
[3] Minghua Zhang,et al. Nitrate pollution source apportionment, uncertainty and sensitivity analysis across a rural-urban river network based on δ15N/δ18O-NO3- isotopes and SIAR modeling. , 2022, Journal of hazardous materials.
[4] Hongbin Liu,et al. Shallow groundwater fluctuation: An ignored soil N loss pathway from cropland. , 2022, The Science of the total environment.
[5] Peiyue Li,et al. Identification and apportionment of shallow groundwater nitrate pollution in Weining Plain, northwest China, using hydrochemical indices, nitrate stable isotopes, and the new Bayesian stable isotope mixing model (MixSIAR) , 2022, Environmental Pollution.
[6] D. Yuan,et al. Nitrate sources and nitrogen dynamics in a karst aquifer with mixed nitrogen inputs (Southwest China): Revealed by multiple stable isotopic and hydro-chemical proxies. , 2021, Water research.
[7] L. Wassenaar,et al. Stable isotopes in global lakes integrate catchment and climatic controls on evaporation , 2021, Nature Communications.
[8] Yingjie Cao,et al. Factor affecting nitrate in a mixed land-use watershed of southern China based on dual nitrate isotopes, sources or transformations? , 2021, Journal of Hydrology.
[9] Yu-Chun Wang,et al. New insight into the response and transport of nitrate in karst groundwater to rainfall events. , 2021, The Science of the total environment.
[10] A. Husic,et al. Seasonality of Recharge Drives Spatial and Temporal Nitrate Removal in a Karst Conduit as Evidenced by Nitrogen Isotope Modeling , 2021, Journal of Geophysical Research: Biogeosciences.
[11] Hongyuan Wang,et al. Shift of lakeshore cropland to buffer zones greatly reduced nitrogen loss from the soil profile caused by the interaction of lake water and shallow groundwater. , 2021, The Science of the total environment.
[12] Qingchun Yang,et al. Chemical compositions evolution of groundwater and its pollution characterization due to agricultural activities in Yinchuan Plain, northwest China. , 2021, Environmental research.
[13] Yuzhong Li,et al. Tracing nitrate sources in the groundwater of an intensive agricultural region , 2021 .
[14] P. Feng,et al. The effects of surface pollution on urban river water quality under rainfall events in Wuqing district, Tianjin, China , 2021 .
[15] Junzeng Xu,et al. Controlled Irrigation and Drainage Reduce Rainfall Runoff and Nitrogen Loss in Paddy Fields , 2021, International journal of environmental research and public health.
[16] T. Harter,et al. Effect of Groundwater Age and Recharge Source on Nitrate Concentrations in Domestic Wells in the San Joaquin Valley. , 2021, Environmental science & technology.
[17] S. Yun,et al. Shift of nitrate sources in groundwater due to intensive livestock farming on Jeju Island, South Korea: With emphasis on legacy effects on water management. , 2021, Water research.
[18] Jing’an Chen,et al. Combined use of stable nitrogen and oxygen isotopes to constrain the nitrate sources in a karst lake , 2020 .
[19] B. Zhu,et al. Effects of organic amendment applications on nitrogen and phosphorus losses from sloping cropland in the upper Yangtze River , 2020 .
[20] D. Oliver,et al. Rainfall and conduit drainage combine to accelerate nitrate loss from a karst agroecosystem: Insights from stable isotope tracing and high-frequency nitrate sensing. , 2020, Water research.
[21] X. Zhuang,et al. Application of biofertilizer containing Bacillus subtilis reduced the nitrogen loss in agricultural soil , 2020 .
[22] H. Strauss,et al. Seasonal effects on contamination characteristics of tap water from rural Beijing: A multiple isotope approach , 2020 .
[23] C. Tang,et al. Mechanisms of nitrate accumulation in highly urbanized rivers: Evidence from multi-isotopes in the Pearl River Delta, China , 2020 .
[24] Anqiang Chen,et al. Identification of the sources and fate of NO3--N in shallow groundwater around a plateau lake in southwest China using NO3- isotopes (δ15N and δ18O) and a Bayesian model. , 2020, Journal of environmental management.
[25] Lisheng Song,et al. Nitrate sources and biogeochemical processes in karst underground rivers impacted by different anthropogenic input characteristics. , 2020, Environmental pollution.
[26] R. Srivastava,et al. Quantification of nitrogen transformation and leaching response to agronomic management for maize crop under rainfed and irrigated condition. , 2020, Environmental pollution.
[27] Han Zhang,et al. Application of the dual-isotope approach and Bayesian isotope mixing model to identify nitrate in groundwater of a multiple land-use area in Chengdu Plain, China. , 2020, The Science of the total environment.
[28] Feifei Zheng,et al. Tracking nitrogen pollution sources in plain watersheds by combining high-frequency water quality monitoring with tracing dual nitrate isotopes , 2020 .
[29] J. Hall,et al. Pollution exacerbates China’s water scarcity and its regional inequality , 2020, Nature Communications.
[30] J. Fox,et al. Quantification of nitrate fate in a karst conduit using stable isotopes and numerical modeling. , 2019, Water research.
[31] Yajun Wang,et al. Isotopic and chemical evidence for nitrate sources and transformation processes in a plateau lake basin in Southwest China. , 2019, The Science of the total environment.
[32] Yong Li,et al. Multi-scaled response of groundwater nitrate contamination to integrated anthropogenic activities in a rapidly urbanizing agricultural catchment , 2019, Environmental Science and Pollution Research.
[33] Mohammad Nakhaei,et al. Groundwater nitrate contamination in an area using urban wastewaters for agricultural irrigation under arid climate condition, southeast of Tehran, Iran , 2019, Agricultural Water Management.
[34] B. Mary,et al. Can alternative cropping systems mitigate nitrogen losses and improve GHG balance? Results from a 19-yr experiment in Northern France , 2019, Geoderma.
[35] Y. Li,et al. Coupled hydrogeochemical evaluation of a vulnerable karst aquifer impacted by septic effluent in a protected natural area. , 2019, The Science of the total environment.
[36] R. Dahlgren,et al. Coupling stable isotopes and water chemistry to assess the role of hydrological and biogeochemical processes on riverine nitrogen sources. , 2019, Water research.
[37] S. Yun,et al. Nitrate contamination and subsequent hydrogeochemical processes of shallow groundwater in agro-livestock farming districts in South Korea , 2019, Agriculture, Ecosystems & Environment.
[38] S. Kao,et al. Nitrogen sources and cycling revealed by dual isotopes of nitrate in a complex urbanized environment. , 2018, Water research.
[39] K. Knöller,et al. Anoxic nitrogen cycling in a hydrocarbon and ammonium contaminated aquifer. , 2018, Water research.
[40] Feili Li,et al. Contribution of nitrate sources in surface water in multiple land use areas by combining isotopes and a Bayesian isotope mixing model , 2018, Applied Geochemistry.
[41] G. Toor,et al. Composition, sources, and bioavailability of nitrogen in a longitudinal gradient from freshwater to estuarine waters. , 2018, Water research.
[42] M. Kuypers,et al. The microbial nitrogen-cycling network , 2018, Nature Reviews Microbiology.
[43] Efi Foufoula-Georgiou,et al. Contribution of wetlands to nitrate removal at the watershed scale , 2018, Nature Geoscience.
[44] Yonghui Yang,et al. Relationship between land-use and sources and fate of nitrate in groundwater in a typical recharge area of the North China Plain. , 2017, The Science of the total environment.
[45] A. Jurado,et al. Isotopic composition of nitrogen species in groundwater under agricultural areas: A review. , 2017, The Science of the total environment.
[46] Jun Lu,et al. Quantitative identification of nitrate pollution sources and uncertainty analysis based on dual isotope approach in an agricultural watershed. , 2017, Environmental pollution.
[47] H. Paerl,et al. Evidence for the Importance of Atmospheric Nitrogen Deposition to Eutrophic Lake Dianchi, China. , 2017, Environmental science & technology.
[48] C. Decock,et al. The nitrogen cycle: A review of isotope effects and isotope modeling approaches , 2017 .
[49] S. Yun,et al. Synthetic fertilizer and livestock manure differently affect δ15N in the agricultural landscape: A review , 2017 .
[50] Dongmei Han,et al. Deep challenges for China's war on water pollution. , 2016, Environmental pollution.
[51] Yi He,et al. Spatiotemporal patterns and source attribution of nitrogen load in a river basin with complex pollution sources. , 2016, Water research.
[52] G. Toor,et al. δ(15)N and δ(18)O Reveal the Sources of Nitrate-Nitrogen in Urban Residential Stormwater Runoff. , 2016, Environmental science & technology.
[53] M. Stutter,et al. Septic tank discharges as multi-pollutant hotspots in catchments. , 2016, The Science of the total environment.
[54] T. Harter,et al. Assessment of sources and fate of nitrate in shallow groundwater of an agricultural area by using a multi-tracer approach. , 2014, The Science of the total environment.
[55] B. Scanlon,et al. Impact of water withdrawals from groundwater and surface water on continental water storage variations , 2012 .
[56] J. Qiu. Environmental science. China to spend billions cleaning up groundwater. , 2011, Science.
[57] L. Band,et al. Tracking nonpoint source nitrogen pollution in human-impacted watersheds. , 2011, Environmental science & technology.
[58] P. Raymond,et al. Land-use controls on sources and processing of nitrate in small watersheds: insights from dual isotopic analysis. , 2010, Ecological applications : a publication of the Ecological Society of America.
[59] A. Townsend,et al. Stoichiometric control of organic carbon–nitrate relationships from soils to the sea , 2010, Nature.
[60] Richard Inger,et al. Source Partitioning Using Stable Isotopes: Coping with Too Much Variation , 2010, PloS one.
[61] B. De Baets,et al. Present limitations and future prospects of stable isotope methods for nitrate source identification in surface- and groundwater. , 2009, Water research.
[62] M. Rivett,et al. Nitrate attenuation in groundwater: a review of biogeochemical controlling processes. , 2008, Water research.
[63] Cong-Qiang Liu,et al. Using δ15N- and δ18O-Values To Identify Nitrate Sources in Karst Ground Water, Guiyang, Southwest China , 2006 .
[64] L. Kellman. A study of tile drain nitrate - δ15N values as a tool for assessing nitrate sources in an agricultural region , 2005, Nutrient Cycling in Agroecosystems.
[65] D. Sigman,et al. Measurement of the oxygen isotopic composition of nitrate in seawater and freshwater using the denitrifier method. , 2002, Analytical chemistry.
[66] S. Yun,et al. Nitrate contamination of alluvial groundwaters in the Nakdong River basin, Korea , 2002 .
[67] B. Mayer,et al. The oxygen isotope composition of nitrate generated by nitrification in acid forest floors , 2001 .
[68] A. Fan,et al. Health implications of nitrate and nitrite in drinking water: an update on methemoglobinemia occurrence and reproductive and developmental toxicity. , 1996, Regulatory toxicology and pharmacology : RTP.
[69] H. Schmidt,et al. Using isotope fractionation of nitrate-nitrogen and nitrate-oxygen for evaluation of microbial denitrification in a sandy aquifer , 1990 .
[70] Na Liu,et al. Depth of straw incorporation significantly alters crop yield, soil organic carbon and total nitrogen in the North China Plain , 2021 .
[71] Ruochun Zhang,et al. Identification of sources and transformations of nitrate in the Xijiang River using nitrate isotopes and Bayesian model. , 2019, The Science of the total environment.