Citation: | Zhao Shilin, Liu Wenjing, Sun Danyang, Li Junxia, 2023. Effect of Organic Matter on Iodine Mobilization in Groundwater of Datong Basin. Earth Science, 48(12): 4699-4710. doi: 10.3799/dqkx.2022.009 |
Andersen, S., Guan, H. X., Teng, W. P., et al., 2009. Speciation of Iodine in High Iodine Groundwater in China Associated with Goitre and Hypothyroidism. Biological Trace Element Research, 128(2): 95-103. https://doi.org/10.1007/s12011-008-8257-x
|
Bhatia, M. P., Das, S. B., Longnecker, K., et al., 2010. Molecular Characterization of Dissolved Organic Matter Associated with the Greenland Ice Sheet. Geochimica et Cosmochimica Acta, 74(13): 3768-3784. https://doi.org/10.1016/j.gca.2010.03.035
|
Cheng, D. W., Zhou, C. M., Zhang, Z. J., et al., 2022. Paleo-Environment Reconstruction of the Middle Permian Lucaogou Formation, Southeastern Junggar Basin, NW China: Implications for the Mechanism of Organic Matter Enrichment in Ancient Lake. Journal of Earth Science, 33(4): 963-976. https://doi.org/10.1007/s12583-020-1073-8
|
Cheng, S. P., Li, C. Y., Yang, G. Z., et al., 2004. Distinction between Late Quaternary Fluvial Incision Induced by Faulting and by Climate: A Case Study of the Sanggan River. Seismology and Geology, 26(2): 169-188(in Chinese with English abstract).
|
Choung, S., Um, W., Kim, M., et al., 2013. Uptake Mechanism for Iodine Species to Black Carbon. Environmental Science and Technology, 47(18): 10349-10355. https://doi.org/10.1021/es301570a
|
Dai, J. L., Zhang, M., Hu, Q. H., et al., 2009. Adsorption and Desorption of Iodine by Various Chinese Soils: Ⅱ. Iodide and Iodate. Geoderma, 153(1-2): 130-135. https://doi.org/10.1016/j.geoderma.2009.07.020
|
Dai, J. L., Zhang, M., Zhu, Y. G., 2004. Adsorption and Desorption of Iodine by Various Chinese Soils. Environment International, 30(4): 525-530. https://doi.org/10.1016/j.envint.2003.10.007
|
D'Andrilli, J., Cooper, W. T., Foreman, C. M., et al., 2015. An Ultrahigh-Resolution Mass Spectrometry Index to Estimate Natural Organic Matter Lability. Rapid Communications in Mass Spectrometry: RCM, 29(24): 2385-2401. https://doi.org/10.1002/rcm.7400
|
Dittmar, T., Koch, B., Hertkorn, N., et al., 2008. A Simple and Efficient Method for the Solid-Phase Extraction of Dissolved Organic Matter (SPE-DOM) from Seawater. Limnology and Oceanography: Methods, 6(6): 230-235. https://doi.org/10.4319/lom.2008.6.230
|
Du, Y., Deng, Y. M., Liu, Z. H., et al., 2021. Novel Insights into Dissolved Organic Matter Processing Pathways in a Coastal Confined Aquifer System with the Highest Known Concentration of Geogenic Ammonium. Environmental Science & Technology, 55(21): 14676-14688. https://doi.org/10.1021/acs.est.1c05301
|
Edward, K., 1963. A Mass Scale Based on CH2=14.000 0 for High Resolution Mass Spectrometry of Organic Compounds. Analytical Chemistry, 35(13): 2146-2154. doi: 10.1021/ac60206a048
|
Gilfedder, B. S., Lai, S. C., Petri, M., et al., 2008. Iodine Speciation in Rain, Snow and Aerosols. Atmospheric Chemistry and Physics, 8(144): 6069-6084.
|
Guo, H. M., Wang, Y. X., 2005. Geochemical Characteristics of Shallow Groundwater in Datong Basin, Northwestern China. Journal of Geochemical Exploration, 87(3): 109-120. https://doi.org/10.1016/j.gexplo.2005.08.002
|
Henjum, S., Barikmo, I., Strand, T., et al., 2011. Iodine-Induced Goitre and High Prevalence of Anaemia among Saharawi Refugee Women. Public Health Nutrition, 15: 1512-1518. https://doi.org/10.1017/s1368980011002886
|
Hu, Q. H., Zhao, P. H., Moran, J. E., et al., 2005. Sorption and Transport of Iodine Species in Sediments from the Savannah River and Hanford Sites. Journal of Contaminant Hydrology, 78(3): 185-205. https://doi.org/10.1016/j.jconhyd.2005.05.007
|
Kodama, S., Takahashi, Y., Okumura, K., et al., 2006. Speciation of Iodine in Solid Environmental Samples by Iodine K-Edge XANES: Application to Soils and Ferromanganese Oxides. Science of the Total Environment, 363(1-3): 275-284. https://doi.org/10.1016/j.scitotenv.2006.01.004
|
Li, D. E., Xu, C., Yeager, C. M., et al., 2019a. Molecular Interaction of Aqueous Iodine Species with Humic Acid Studied by I and C K-Edge X-Ray Absorption Spectroscopy. Environmental Science and Technology, 53(21): 12416-12424. https://doi.org/10.1021/acs.est.9b03682
|
Li, X. M., Chen, Q. L., He, C., et al., 2019b. Organic Carbon Amendments Affect the Chemodiversity of Soil Dissolved Organic Matter and Its Associations with Soil Microbial Communities. Environmental Science & Technology, 53(1): 50-59. https://doi.org/10.1021/acs.est.8b04673
|
Li, J. X., Wang, Y. T., Xue, X. B., et al., 2020. Mechanistic Insights into Iodine Enrichment in Groundwater during the Transformation of Iron Minerals in Aquifer Sediments. Science of the Total Environment, 745: 140922. https://doi.org/10.1016/j.scitotenv.2020.140922
|
Li, J. X., Wang, Y. X., Guo, W., et al., 2014. Iodine Mobilization in Groundwater System at Datong Basin, China: Evidence from Hydrochemistry and Fluorescence Characteristics. Science of the Total Environment, 468-469: 738-745. https://doi.org/10.1016/j.scitotenv.2013.08.092
|
Li, J. X., Wang, Y. X., Xie, X. J., et al., 2013. Hydrogeochemistry of High Iodine Groundwater: A Case Study at the Datong Basin, Northern China. Environmental Science: Processes & Impacts, 15(4): 848-859. https://doi.org/10.1039/c3em30841c
|
Li, J. X., Wang, Y. X., Xie, X. J., et al., 2016. Effects of Water-Sediment Interaction and Irrigation Practices on Iodine Enrichment in Shallow Groundwater. Journal of Hydrology, 543: 293-304. https://doi.org/10.1016/j.jhydrol.2016.10.002
|
McDonough, L. K., O'Carroll, D. M., Meredith, K., et al., 2020. Changes in Groundwater Dissolved Organic Matter Character in a Coastal Sand Aquifer Due to Rainfall Recharge. Water Research, 169: 115201. https://doi.org/10.1016/j.watres.2019.115201
|
Mostovaya, A., Hawkes, J. A., Dittmar, T., et al., 2017. Molecular Determinants of Dissolved Organic Matter Reactivity in Lake Water. Frontiers in Earth Science, 5. https://doi.org/10.3389/feart.2017.00106
|
Muramatsu, Y., Yoshida, S., 1999. Effects of Microorganisms on the Fate of Iodine in the Soil Environment. Geomicrobiology Journal, 16(1): 85-93. https://doi.org/10.1080/014904599270776
|
Niu, X. Z., Harir, M., Schmitt-Kopplin, P., et al., 2018. Characterisation of Dissolved Organic Matter Using Fourier-Transform Ion Cyclotron Resonance Mass Spectrometry: Type-Specific Unique Signatures and Implications for Reactivity. Science of the Total Environment, 644: 68-76. https://doi.org/10.1016/j.scitotenv.2018.06.351
|
Ohno, T., Parr, T. B., Gruselle, M. C. I., et al., 2014. Molecular Composition and Biodegradability of Soil Organic Matter: A Case Study Comparing Two New England Forest Types. Environmental Science & Technology, 48(13): 7229-7236. https://doi.org/10.1021/es305570c
|
Postma, D., Larsen, F., Thai, N. T., et al., 2012. Groundwater Arsenic Concentrations in Vietnam Controlled by Sediment Age. Nature Geoscience, 5(9): 656-661. https://doi.org/10.1038/ngeo1540
|
Pracht, L. E., Tfaily, M. M., Ardissono, R. J., et al., 2018. Molecular Characterization of Organic Matter Mobilized from Bangladeshi Aquifer Sediment: Tracking Carbon Compositional Change during Microbial Utilization. Biogeosciences, 15(6): 1733-1747 doi: 10.5194/bg-15-1733-2018
|
Qian, K., Li, J. X., Xie, X. J., et al., 2017. Organic and Inorganic Colloids Impacting Total Iodine Behavior in Groundwater from the Datong Basin, China. Science of the Total Environment, 601/602: 380-390. https://doi.org/10.1016/j.scitotenv.2017.05.127.
|
Qiao, W., Guo, H. M., He, C., et al., 2020. Molecular Evidence of Arsenic Mobility Linked to Biodegradable Organic Matter. Environmental Science and Technology, 54(12): 7280-7290. https://doi.org/10.1021/acs.est.0c00737
|
Roulier, M., Coppin, F., Bueno, M., et al., 2019. Iodine Budget in Forest Soils: Influence of Environmental Conditions and Soil Physicochemical Properties. Chemosphere, 224: 20-28. https://doi.org/10.1016/j.chemosphere.2019.02.060
|
Secretariat, W. H. O., Andersson, M., de Benoist, B., et al., 2007. Prevention and Control of Iodine Deficiency in Pregnant and Lactating Women and in Children Less Than 2-Years-Old: Conclusions and Recommendations of the Technical Consultation. Public Health Nutrition, 10(12A): 1606-1611. https://doi.org/10.1017/s1368980007361004
|
Smith, A. P., Bond-Lamberty, B., Benscoter, B. W., et al., 2017. Shifts in Pore Connectivity from Precipitation versus Groundwater Rewetting Increases Soil Carbon Loss after Drought. Nature Communications, 8: 1335. https://doi.org/10.1038/s31467-017-01320-x
|
Steinberg, S. M., Schmett, G. T., Kimble, G., et al., 2008. Immobilization of Fission Iodine by Reaction with Insoluble Natural Organic Matter. Journal of Radioanalytical and Nuclear Chemistry, 277(1): 175-183. https://doi.org/10.1007/s10967-008-0727-2
|
Su, C. L., Wang, Y. X., 2008. A Study of Zonality of Hydrochemistry of Groundwater in Unconsolidated Sediments in Datong Basin. Hydrogeology & Engineering Geology, 35(1): 83-89(in Chinese with English abstract). doi: 10.3969/j.issn.1000-3665.2008.01.019
|
Waite, T. J., Truesdale, V. W., 2003. Iodate Reduction by Isochrysis Galbana is Relatively Insensitive to De-Activation of Nitrate Reductase Activity: Are Phytoplankton Really Responsible for Iodate Reduction in Seawater? Marine Chemistry, 81(3-4), 137-148. https://doi.org/10.1016/s0304-4203(03)00013-6
|
Wang, J. L, Jin, M. G., Jia, B. J., et al., 2022. Numerical Investigation of Residence Time Distribution for the Characterization of Groundwater Flow System in Three Dimensions. Journal of Earth Science, 33(6): 1583-1600. https://doi.org/10.1007/s12583-022-1623-3
|
Wang, W., Dou, W. Y., He, C., et al., 2020. Characterization of Surface Water Dissolved Organic Matter by Stepwise Elution Solid Phase Extraction Followed by Fourier Transform Ion Cyclotron Resonance Mass Spectrometry. Chinese Journal of Analysis Laboratory, 39(5): 521-526(in Chinese with English abstract).
|
Wang, Y. T., Li, J. X., Xue, X. B., et al., 2021. Similarities and Differences of Main Controlling Factors of Natural High Iodine Groundwater between North China Plain and Datong Basin. Earth Science, 46(1): 308-320 (in Chinese with English abstract).
|
Wu, F., Wang, Z. Q., Tong, X. J., et al., 2017. The Distribution Characteristics and Storage Environments of Rich Iodine in Shallow Groundwater of Typical Areas in China. Journal of Water Resources and Water Engineering, 28(2): 99-104(in Chinese with English abstract).
|
Xu, L., Song, F. H., Qin, S., et al., 2019. Characterization of IHSS Nordic Lake Fulvic Acid by Electrospray Ionization Fourier Transform Ion Cyclotron Resonance Mass Spectrometry. Chinese Journal of Analysis Laboratory, 38(6): 637-642(in Chinese with English abstract).
|
Xue, J. K., Deng, Y. M., Du, Y., et al., 2021. Molecular Characterization of Dissolved Organic Matter (DOM) in Shallow Aquifer along Middle Reach of Yangtze River and Its Implications for Iodine Enrichment. Earth Science, 46(11): 4140-4149(in Chinese with English abstract).
|
Yamada, H., Hisamori, I., Yonebayashi, K., 2002. Identification of Organically Bound Iodine in Soil Humic Substances by Size Exclusion Chromatography / Inductively Coupled Plasma Mass Spectrometry (SEC/ICP-MS). Soil Science and Plant Nutrition, 48(3): 379-385. https://doi.org/10.1080/00380768.2002.10409215
|
Yamada, H., Kiriyama, T., Onagawa, Y., et al., 1999. Speciation of Iodine in Soils. Soil Science and Plant Nutrition, 45(3): 563-568. https://doi.org/10.1080/00380768.1999.10415819
|
Yamaguchi, N., Nakano, M., Takamatsu, R., et al., 2010. Inorganic Iodine Incorporation into Soil Organic Matter: Evidence from Iodine K-Edge X-Ray Absorption Near-Edge Structure. Journal of Environmental Radioactivity, 101(6): 451-457. https://doi.org/10.1016/j.jenvrad.2008.06.003
|
Yang, H. X., Chen, J. L., Gao, J. X., et al., 2017. Characterization of Molecular Composition and Seasonal Variation of Natural Organic Matter in Source Water Using Fourier Transform Ion Cyclotron Resonance Mass Spectrometry. Chinese Journal of Ecology, 36(4): 1053-1059(in Chinese with English abstract).
|
Yi, P., Chen, X. G., Wang, Z. X., et al., 2018. Iodine Isotopes (129I and 127I) in the Hydrosphere of Qinghai-Tibet Region and South China Sea. Journal of Environmental Radioactivity, 192: 86-94. https://doi.org/10.1016/j.jenvrad.2018.06.005
|
Zeng, C. P., Wu, F. W., Dong, J., et al., 2017. Molecular Characterization of Dissolved Organic Matter in Underground Water by ESI FT-ICR MS. Journal of Instrumental Analysis, 36(5): 679-683(in Chinese with English abstract).
|
Zhang, E. Y., Wang, Y. Y., Qian, Y., et al., 2013. Iodine in Groundwater of the North China Plain: Spatial Patterns and Hydrogeochemical Processes of Enrichment. Journal of Geochemical Exploration, 135: 40-53. https://doi.org/10.1016/j.gexplo.2012.11.016
|
Zhang, E. Y., Zhang, F. C., Qian, Y., et al., 2010. The Distribution of High Iodine Groundwater in Typical Areas of China and Its Inspiration. Geology in China, 37(3): 797-802(in Chinese with English abstract).
|
Zhou, H. L., Su, C. L., Li, J. X., et al., 2017. Characteristics of Rare Earth Elements in the Sediments of the Datong Basin and Its Indication to the Iodine Enrichment. Earth Science, 42(2): 298-306 (in Chinese with English abstract).
|
Zhu, C. J., Li, J. X., Xie, X. J., 2021. Carbon and Sulfur Isotopic Features and Its Implications for Iodine Mobilization in Groundwater System at Datong Basin, Northern China. Earth Science, 46(12): 4480-4491 (in Chinese with English abstract).
|
Zhu, X. C., Wang, Y. B., Dang, X. Y., et al., 2022. Spatiotemporal Distribution of Microbial Tetraether Lipids in a Lake and Its Inflowing River: Implications for the Identification of Flooding Events. Journal of Earth Science, 33(6): 1601-1613. https://doi.org/10.1007/s12583-021-1552-6
|
程绍平, 李传友, 杨桂枝, 等, 2004. 区分晚第四纪断层作用驱动的和气候引起的流水下切: 以桑干河大同盆地河段为例. 地震地质, 26(2): 169-188.
|
苏春利, 王焰新, 2008. 大同盆地孔隙地下水化学场的分带规律性研究. 水文地质工程地质, 35(1): 83-89.
|
王威, 窦文渊, 何晨, 等, 2020. 多步洗脱固相萃取-傅立叶变换离子回旋共振质谱表征地表水可溶有机质. 分析试验室, 39(5): 521-526.
|
王雨婷, 李俊霞, 薛肖斌, 等, 2021. 华北平原与大同盆地原生高碘地下水赋存主控因素的异同. 地球科学, 46(1): 308-320. doi: 10.3799/dqkx.2019.261
|
吴飞, 王曾祺, 童秀娟, 等, 2017. 我国典型地区浅层高碘地下水分布特征及其赋存环境. 水资源与水工程学报, 28(2): 99-104.
|
徐磊, 宋凡浩, 秦帅, 等, 2019. 电喷雾离子源傅立叶变换离子回旋共振质谱分析IHSS Nordic湖富里酸的分子结构. 分析试验室, 38(6): 637-642.
|
薛江凯, 邓娅敏, 杜尧, 等, 2021. 长江中游沿岸地下水中有机质分子组成特征及其对碘富集的指示. 地球科学, 46(11): 4140-4149. doi: 10.3799/dqkx.2020.398
|
杨红霞, 陈俊良, 高津旭, 等, 2017. 利用傅立叶变换离子回旋共振质谱测定不同季节水源水中天然有机质分子结构. 生态学杂志, 36(4): 1053-1059.
|
曾纯品, 武法伟, 董军, 等, 2017. 电喷雾电离源结合傅立叶变换离子回旋共振质谱分析地下水中可溶性有机质分子组成. 分析测试学报, 36(5): 679-683.
|
张二勇, 张福存, 钱永, 等, 2010. 中国典型地区高碘地下水分布特征及启示. 中国地质, 37(3): 797-802.
|
周海玲, 苏春利, 李俊霞, 等, 2017. 大同盆地沉积物REE分布特征及其对碘富集的指示. 地球科学, 42(2): 298-306. doi: 10.3799/dqkx.2017.022
|
朱沉静, 李俊霞, 谢先军, 2021. 大同盆地地下水中碳硫同位素组成特征及其对碘迁移富集的指示. 地球科学, 46(12): 4480-4491. doi: 10.3799/dqkx.2021.090
|