Название | Wetland Carbon and Environmental Management |
---|---|
Автор произведения | Группа авторов |
Жанр | Физика |
Серия | |
Издательство | Физика |
Год выпуска | 0 |
isbn | 9781119639336 |
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90 Deverel, S. J., Ingrum, T., & Leighton, D. (2016). Present‐day oxidative subsidence of organic soils and mitigation in the Sacramento‐San Joaquin Delta, California, USA. Hydrogeology Journal, 24(3), 569–586. https://doi.org/10.1007/s10040‐016‐1391‐1
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97 Doughty, C. L., Langley, J. A., Walker, W. S., Feller, I. C., Schaub, R., & Chapman, S. K. (2016). Mangrove range expansion rapidly increases coastal wetland carbon storage. Estuaries and Coasts, 39(2), 385–396. https://doi.org/10.1007/s12237‐015‐9993‐8
98 Drake, B. G. (2014). Rising sea level, temperature, and precipitation impact plant and ecosystem responses to elevated CO2 on a Chesapeake Bay wetland: Review of a 28‐year study. Global Change Biology, 20(11), 3329–3343. https://doi.org/10.1111/gcb.12631
99 Drake, H., & Ivarsson, M. (2018). The role of anaerobic fungi in fundamental biogeochemical cycles in the deep biosphere. Fungal Biology Reviews, 32(1), 20–25. https://doi.org/10.1016/j.fbr.2017.10.001
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101 Drexler, J. Z., de Fontaine, C. S., & Deverel, S. J. (2009). The legacy of wetland drainage on the remaining peat in the Sacramento San Joaquin Delta, California, USA. Wetlands, 29(1), 372–386. https://doi.org/10.1672/08‐97.1
102 Driscoll, C. T., Lehtinen, M. D., & Sullivan, T. J. (1994). Modeling the acid‐base chemistry of organic solutes in Adirondack, New York, lakes. Water Resources Research, 30(2), 297–306. https://doi.org/doi.org/10.1029/93WR02888
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104 Duan, W. M., Hedrick, D. B., Pye, K., Coleman, M. L., & White, D. C. (1996). A preliminary study of the geochemical and microbiological characteristics of modern sedimentary concretions. Limnology and Oceanography, 41(7), 1404–1414. https://doi.org/10.4319/lo.1996.41.7.1404
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109 Egger, M., Rasigraf, O., Sapart, C. J., Jilbert, T., Jetten, M. S. M., Röckmann, T., et al. (2015). Iron‐mediated anaerobic oxidation of methane in brackish coastal sediments. Environmental Science and Technology, 49(1), 277–283. https://doi.org/10.1021/es503663z
110 Emerson, D., Weiss, J. V, & Megonigal, J. P. (1999). Iron‐oxidizing bacteria are associated with ferric hydroxide precipitates (Fe‐plaque) on the roots of wetland plants. Applied and Environmental Microbiology, 65(6), 2758–2761.
111 Enríquez, S., Duarte, C. M., & Sand‐Jensen, K. (1993). Patterns in decomposition rates among photosynthetic organisms: The importance of detritus C:N:P content. Oecologia, 94(4), 457–471. https://doi.org/10.1007/BF00566960
112 Erickson, J. E., Megonigal, J. P., Peresta, G., & Drake, B. G. (2007). Salinity and sea level mediate elevated CO2 effects on C3‐C4 plant interactions and tissue nitrogen in a Chesapeake Bay tidal wetland. Global Change Biology, 13, 202–215.