788
Views
3
CrossRef citations to date
0
Altmetric
Original Articles

Effects Of Short-Term Aerobic Conditions On Phosphorus Mobility In Sediments

, , , , , , & show all
Pages 649-661 | Received 26 Mar 2019, Accepted 13 Aug 2019, Published online: 29 Aug 2019

References

  • Bertolin A, Rudello D, Ugo P. 1995. A new device for in-situ pore-water sampling. Mar. Chem. 49(2-3):233–239.
  • Chen M, Ding S, Chen X, Sun Q, Fan X, Lin J, Ren M, Yang L, Zhang C. 2018. Mechanisms driving phosphorus release during algal blooms based on hourly changes in iron and phosphorus concentrations in sediments. Water Res. 133:153–164.
  • Chen M, Ding S, Liu L, Xu D, Gong M, Tang H, Zhang C. 2016. Kinetics of phosphorus release from sediments and its relationship with iron speciation influenced by the mussel (Corbicula fluminea) bioturbation. Sci Total Environ. 542(Pt A):833–840.
  • Chen M, Ding S, Liu L, Xu D, Han C, Zhang C. 2015. Iron-coupled inactivation of phosphorus in sediments by macrozoobenthos (chironomid larvae) bioturbation: evidences from high-resolution dynamic measurements. Environ Pollut. 204:241–247.
  • Chen X, Sun Q, Ding S, Chen M, Fan X, Zhang L, Zhang C. 2016. Mobile Arsenic Distribution and Release Kinetics in Sediment Profiles under Varying pH Conditions. Water Air Soil Poll. 228:1–12.
  • Davison W, Zhang H. 2012. Progress in understanding the use of diffusive gradients in thin films (DGT) – back to basics. Environ Chem. 9(1):1–13.
  • Davlson W, Zhang H. 1994. In situspeciation measurements of trace components in natural waters using thin-film gels. Nature. 367:546–548.
  • Ding S, Han C, Wang Y, Yao L, Wang Y, Xu D, Sun Q, Williams PN, Zhang C. 2015. In situ, high-resolution imaging of labile phosphorus in sediments of a large eutrophic lake. Water Res. 74:100–109.
  • Ding S, Wang Y, Wang D, Li YY, Gong M, Zhang C. 2016. In situ, high-resolution evidence for iron-coupled mobilization of phosphorus in sediments. Sci. Rep-UK. 6:1–11.
  • Ding S, Wang Y, Xu D, Zhu C, Zhang C. 2013. Gel-Based Coloration Technique for the Submillimeter-Scale Imaging of Labile Phosphorus in Sediments and Soils with Diffusive Gradients in Thin Films. Environ Sci Technol. 47(14):7821–7829.
  • Ding S, Xu D, Sun Q, Yin H, Zhang C. 2010. Measurement of dissolved reactive phosphorus using the diffusive gradients in thin films technique with a high-capacity binding phase. Environ Sci Technol. 44(21):8169–8174.
  • Ding S, Chen M, Gong M, Fan X, Qin B, Xu H, Gao S, Jin Z, Tsang DCW, Zhang C. 2018. Internal phosphorus loading from sediments causes seasonal nitrogen limitation for harmful algal blooms. Sci Total Environ. 625:872–884.
  • Einsele W. 1936. Über die Beziehungen des Eisenkreislaufs zum Phosphatkreislauf eutrophen, im eutrophen See. Arch. Hydrobiol. 29:664–686.
  • Giles CD, Isles PDF, Manley T, Xu Y, Druschel GK, Schroth AW. 2016. Themobility of phosphorus, iron, and manganese through the sedimentewater continuum of a shallow eutrophic freshwater lake under stratified and mixed water-column conditions. Biogeochemistry. 127(1):15–34.
  • Harper MP, Davison W, Tych W. 2000. DIFS—a modelling and simulation tool for DGT induced trace metal remobilisation in sediments and soils. Environ. Modell. Softw. 15(1):55–66.
  • Harper MP, Davison W, Zhang H, Tych W. 1998. Kinetics of metal exchange between solids and solutions in sediments and soils interpreted from DGT measured fluxes. Geochim. Cosmochim. Ac. 62(16):2757–2770.
  • Lewandowski J, Hupfer M. 2005. Effect of macrozoobenthos on two‐dimensional small‐scale heterogeneity of pore water phosphorus concentrations in lake sediments: A laboratory study. Limnol Oceanogr. 50(4):1106–1118.
  • Lewandowski J, Laskov C, Hupfer M. 2007. The relationship between Chironomus plumosus burrows and the spatial distribution of pore-water phosphate, iron and ammonium in lake sediments. Freshwater Biol. 52(2):331–343.
  • Mortimer CH. 1941. The Exchange of Dissolved Substances between Mud and Water in Lakes. J. Ecol. 29(2):280–329.
  • Murphy J, Riley JP. 1962. A modified single solution method for the determination of phosphate in natural waters. Anal. Chim. Acta. 27:31–36.
  • Munger ZW, Carey CC, Gerling AB, Hamre KD, Doubek JP, Klepatzki SD, McClure RP, Schreiber ME. 2016. Effectiveness of hypolimnetic oxygenation for preventing accumulation of Fe and Mn in a drinking water reservoir. Water Res. 106:1–14.
  • O'Neil JM, Davis TW, Burford MA, Gobler CJ. 2012. The rise of harmful cyanobacteria blooms: the potential roles of eutrophication and climate change. Harmful Algae. 14:313–334.
  • Revsbech NP, Jorgensen BB, Blackburn TH. 1980. Oxygen in the Sea Bottom Measured with a Microelectrode. Science. 207(4437):1355–1356.
  • Ruban V, López-Sánchez JF, Pardo P, Rauret G, Muntau H, Quevauviller P. 2001. Harmonized protocol and certified reference material for the determination of extractable contents of phosphorus in freshwater sediments–a synthesis of recent works. Fresen. J. Anal. Chem. 370(2-3):224–228.
  • Schindler DW, Carpenter SR, Chapra SC, Hecky RE, Orihel DM. 2016. Reducing phosphorus to Curb Lake eutrophication is a success. Environ Sci Technol. 50(17):8923–8929.
  • Seeberg-Elverfeldt J, Schlüter M, Feseker T, Kölling M. 2005. Rhizon sampling of porewaters near the sediment-water interface of aquatic systems. Limnol Oceanogr Methods. 3(8):361–371.
  • Smith L, Watzin MC, Druschel G. 2011. Relating sediment phosphorus mobility to seasonal and diel redox fluctuations at the sediment–water interface in a eutrophic freshwater lake. Limnol Oceanogr. 56(6):2251–2264.
  • Søndergaard M, Jensen JP, Jeppesen E. 2003. Role of sediment and internal loading of phosphorus in shallow lakes. Hydrobiologia. 506:135–145.
  • Tamura H, Goto K, Yotsuyanagi T, Nagayama M. 1974. Spectrophotometric determination of iron(II) with 1,10-phenanthroline in the presence of large amounts of iron(III). Talanta. 21(4):314–318.
  • Watson SB, Miller C, Arhonditsis G, Boyer GL, Carmichael W, Charlton MN, Confesor R, Depew DC, Höök TO, Ludsin SA, et al. 2016. The re-eutrophication of Lake Erie: harmful algal blooms and hypoxia. Harmful Algae. 56:44–66.
  • Welch EB, Cooke GD. 2005. Internal phosphorus loading in shallow lakes: importance and control. Lake. Reservoir Manage. 21(2):209–217.
  • Wu Z, Wang S. 2017. Release mechanism and kinetic exchange for phosphorus (P) in lake sediment characterized by diffusive gradients in thin films (DGT). J Hazard Mater. 331:36–44.
  • Xu X, Cao JS. 2006. Application of river aeration technology in river pollution control of Suzhou area. Water Resour. Prot. 22:30–33.
  • Xu D, Wei W, Shiming D, Qin S, Chaosheng Z. 2012a. A high-resolution dialysis technique for rapid determination of dissolved reactive phosphate and ferrous iron in pore water of sediments. Sci. Total Environ. 422:245–252.
  • Xu D, Ding S, Sun Q, Zhong J, Wu W, Jia F. 2012. Evaluation of in situ capping with clean soils to control phosphate release from sediments. Sci. Total Environ. 438:334–341.
  • Xu D, Chen Y, Ding S, Sun Q, Wang Y, Zhang C. 2013. Diffusive gradients in thin films technique equipped with a mixed binding gel for simultaneous measurements of dissolved reactive phosphorus and dissolved iron. Environ Sci Technol. 47(18):10477–10484.
  • Zhang H, Davison W, Gadi R, Kobayashi T. 1998. In situ measurement of dissolved phosphorus in natural waters using DGT. Anal. Chim. Acta. 370(1):29–38.