Employing stable isotopes to determine the residence times of soil water and the temporal origin of water taken up by Fagus sylvatica and Picea abies in a temperate forest.
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Markus Weiler | Nina Buchmann | Werner Eugster | Ansgar Kahmen | N. Buchmann | W. Eugster | M. Weiler | A. Kahmen | S. Seeger | Stefan Seeger | N. Brinkmann | Nadine Brinkmann | Nadine Brinkmann
[1] Christine Stumpp,et al. Spatial and temporal dynamics of water flow and solute transport in a heterogeneous glacial till: The application of high-resolution profiles of δ18O and δ2H in pore waters , 2012 .
[2] Shiqiang Zhang,et al. Significant Difference in Hydrogen Isotope Composition Between Xylem and Tissue Water in Populus Euphratica. , 2016, Plant, cell & environment.
[3] T. Dawson. Fog in the California redwood forest: ecosystem inputs and use by plants , 1998, Oecologia.
[4] J. Ehleringer,et al. Assessing Ecosystem-Level Water Relations Through Stable Isotope Ratio Analyses , 2000 .
[5] R. S. W. van de Wal,et al. Recovering lateral variations in lithospheric strength from bedrock motion data using a coupled ice sheet‐lithosphere model , 2006 .
[6] Doerthe Tetzlaff,et al. Regionalization of transit time estimates in montane catchments by integrating landscape controls , 2009 .
[7] E. Schefuß,et al. Leaf water deuterium enrichment shapes leaf wax n-alkane δD values of angiosperm plants I: Experimental evidence and mechanistic insights , 2013 .
[8] A. Kahmen,et al. Cryogenic vacuum artifacts do not affect plant water‐uptake studies using stable isotope analysis , 2017 .
[9] B. Hoffmann,et al. Leaf water deuterium enrichment shapes leaf wax n-alkane δD values of angiosperm plants II: Observational evidence and global implications , 2013 .
[10] James R. Ehleringer,et al. Differential utilization of summer rains by desert plants , 1991, Oecologia.
[11] W. Eugster,et al. Effects of sampling design on the probability to detect soil carbon stock changes at the Swiss CarboEurope site Lägeren , 2009 .
[12] W. Brand,et al. Continuous flow 2H/1H and 18O/16O analysis of water samples with dual inlet precision. , 2004, Rapid communications in mass spectrometry : RCM.
[13] P. Vitousek,et al. Cellulose δ18O is an index of leaf-to-air vapor pressure difference (VPD) in tropical plants , 2011, Proceedings of the National Academy of Sciences.
[14] James R. Ehleringer,et al. Water uptake by plants: perspectives from stable isotope composition , 1992 .
[15] S. Seneviratne,et al. Record dry summer in 2015 challenges precipitation projections in Central Europe , 2016, Scientific Reports.
[16] M. Weiler,et al. High-resolution isotope measurements resolve rapid ecohydrological dynamics at the soil-plant interface. , 2016, The New phytologist.
[17] J. Ehleringer,et al. Stable oxygen and hydrogen isotope composition of leaf water in C3 and C4 plant species under field conditions , 1991, Oecologia.
[18] Amir Allam,et al. PRYSM: An open‐source framework for PRoxY System Modeling, with applications to oxygen‐isotope systems , 2015 .
[19] E. Schulze,et al. Relationships among Maximum Stomatal Conductance, Ecosystem Surface Conductance, Carbon Assimilation Rate, and Plant Nitrogen Nutrition: A Global Ecology Scaling Exercise , 1994 .
[20] Miroslav Šejna,et al. Development and Applications of the HYDRUS and STANMOD Software Packages and Related Codes , 2008 .
[21] Xiahong Feng,et al. A stable isotope study of soil water: evidence for mixing and preferential flow paths , 2004 .
[22] Marian Kazda,et al. Vertical distribution and radial growth of coarse roots in pure and mixed stands of Fagus sylvatica and Picea abies , 2001 .
[23] S. Managave. Model evaluation of the coherence of a common source water oxygen isotopic signal recorded by tree‐ring cellulose and speleothem calcite , 2014 .
[24] G. Lin,et al. UTILIZATION OF SURFACE-WATER BY RED MANGROVE (RHIZOPHORA-MANGLE L) - AN ISOTOPIC STUDY , 1994 .
[25] S. Richter,et al. Continental-scale patterns in modern wood cellulose δ18O : Implications for interpreting paleo-wood cellulose δ18O , 2008 .
[26] G. Farquhar,et al. Carbon and Oxygen Isotope Effects in the Exchange of Carbon Dioxide between Terrestrial Plants and the Atmosphere , 1993 .
[27] Todd E. Dawson,et al. Seasonal water uptake and movement in root systems of Australian phraeatophytic plants of dimorphic root morphology: a stable isotope investigation , 1996, Oecologia.
[28] Markus Weiler,et al. Estimating flow and transport parameters in the unsaturated zone with pore water stable isotopes , 2015 .
[29] D. Wedin,et al. Seasonal changes in depth of water uptake for encroaching trees Juniperus virginiana and Pinus ponderosa and two dominant C4 grasses in a semiarid grassland. , 2008, Tree physiology.
[30] R. Feddes,et al. Simulation of field water use and crop yield , 1978 .
[31] Markus Reichstein,et al. Stand age and species richness dampen interannual variation of ecosystem-level photosynthetic capacity , 2017, Nature Ecology &Evolution.
[32] Meisha Holloway-Phillips,et al. Stable isotopes in leaf water of terrestrial plants. , 2016, Plant, cell & environment.
[33] D. Hertel,et al. Root competition between beech and oak: a hypothesis , 2017, Oecologia.
[34] G. Goldstein,et al. Partitioning of soil water among canopy trees in a seasonally dry tropical forest , 1999, Oecologia.
[35] Stephen P. Good,et al. Hydrologic connectivity constrains partitioning of global terrestrial water fluxes , 2015, Science.
[36] N. McDowell,et al. Oxygen isotope content of CO2 in nocturnal ecosystem respiration: 2. Short‐term dynamics of foliar and soil component fluxes in an old‐growth ponderosa pine forest , 2003 .
[37] Pablo Gamazo,et al. Reactive Transport Modeling of Natural Carbon Sequestration in Ultramafic Mine Tailings , 2012 .
[38] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[39] Ulrich E. Prechsl,et al. Tightly bound soil water introduces isotopic memory effects on mobile and extractable soil water pools , 2017, Isotopes in environmental and health studies.
[40] L. Sternberg,et al. Testing plant use of mobile vs immobile soil water sources using stable isotope experiments. , 2017, The New phytologist.
[41] Mark A. Liniger,et al. Projected changes in precipitation intensity and frequency in Switzerland: a multi‐model perspective , 2015 .
[42] Patricia Gober,et al. Social science in a water observing system , 2009 .
[43] Jeffrey J. McDonnell,et al. Ecohydrologic separation of water between trees and streams in a Mediterranean climate , 2010 .
[44] W. Brand,et al. Referencing strategies and techniques in stable isotope ratio analysis. , 2001, Rapid communications in mass spectrometry : RCM.
[45] M. Barbour. Stable oxygen isotope composition of plant tissue: a review. , 2007, Functional plant biology : FPB.
[46] Lee Barbour,et al. Transport of stable isotopes of water and sulphate within reclaimed oil sands saline–sodic mine overburden , 2015 .
[47] M. Weiler,et al. Established methods and new opportunities for pore water stable isotope analysis , 2015 .
[48] Jing-Jie Yu,et al. Relationships between precipitation, soil water and groundwater at Chongling catchment with the typical vegetation cover in the Taihang mountainous region, China , 2011 .
[49] M. Weiler,et al. Travel times in the vadose zone: Variability in space and time , 2016 .
[50] J. McDonnell,et al. Global separation of plant transpiration from groundwater and streamflow , 2015, Nature.
[51] D. McCarroll,et al. Stable isotopes in tree rings. , 2004 .
[52] O. Chadwick,et al. Oxygen isotopic composition of soil water: Quantifying evaporation and transpiration , 1998 .
[53] N. Buchmann,et al. Methodical study of nitrous oxide eddy covariance measurements using quantum cascade laser spectrometery over a Swiss forest , 2007 .
[54] Christine Stumpp,et al. Effects of Land Cover and Fertilization Method on Water Flow and Solute Transport in Five Lysimeters: A Long‐Term Study Using Stable Water Isotopes , 2012 .
[55] Nina Buchmann,et al. Temperate tree species show identical response in tree water deficit but different sensitivities in sap flow to summer soil drying. , 2016, Tree physiology.
[56] Olivier Bouriaud,et al. Tree diversity does not always improve resistance of forest ecosystems to drought , 2014, Proceedings of the National Academy of Sciences.
[57] M. Raupach,et al. Maximum conductances for evaporation from global vegetation types , 1995 .
[58] Nobuhito Ohte,et al. Residence times and flow paths of water in steep unchannelled catchments , 2002 .
[59] Gabriel J. Bowen,et al. Spatial distribution of δ18O in meteoric precipitation , 2002 .
[60] J. Ehleringer,et al. A mechanistic model for interpretation of hydrogen and oxygen isotope ratios in tree-ring cellulose , 2000 .
[61] G Goldstein,et al. Water transport in trees: current perspectives, new insights and some controversies. , 2001, Environmental and experimental botany.
[62] W. Brand,et al. ConFlo III – an interface for high precision δ13C and δ15N analysis with an extended dynamic range , 1999 .
[63] A. Brauer,et al. A dual-biomarker approach for quantification of changes in relative humidity from sedimentary lipid D ∕ H ratios , 2017 .
[64] D. Ehhalt,et al. Soil-water movement and evapotranspiration: Changes in the isotopic composition of the water , 1967 .
[65] N. Buchmann,et al. No shift to a deeper water uptake depth in response to summer drought of two lowland and sub-alpine C3-grasslands in Switzerland , 2014, Oecologia.
[66] Hongsong Chen,et al. Seasonal recharge and mean residence times of soil and epikarst water in a small karst catchment of southwest China , 2015, Scientific Reports.
[67] G. Haug,et al. The twentieth century was the wettest period in northern Pakistan over the past millennium , 2006, Nature.
[68] Edward R. Cook,et al. The D/H ratios of sap in trees: implications for water sources and tree ring D/H ratios , 1985 .
[69] Xiaomin Sun,et al. Seasonal variations in depth of water uptake for a subtropical coniferous plantation subjected to drought in an East Asian monsoon region , 2015 .
[70] Arthur H. Johnson,et al. Continental-Scale Patterns in Modern Wood Cellulose δ18O: Implications for Interpreting Paleo-Wood δ18O , 2006 .
[71] Manola Brunet,et al. Indices for daily temperature and precipitation extremes in Europe analyzed for the period 1901–2000 , 2006 .
[72] H. Craig,et al. Deuterium and oxygen 18 variations in the ocean and marine atmosphere , 1965 .
[73] James R. Ehleringer,et al. Streamside trees that do not use stream water , 1991, Nature.
[74] Grady Hanrahan,et al. Development and Applications of Satellite-Based Services , 2000 .
[75] H. Celle-Jeanton,et al. Determination of spatiotemporal variability of tree water uptake using stable isotopes (δ18O, δ2H) in an alluvial system supplied by a high‐altitude watershed, Pfyn forest, Switzerland , 2014 .
[76] K. Auerswald,et al. 2 H and 18 O depletion of water close to organic surfaces , 2016 .
[77] Peter A. Troch,et al. Separating physical and meteorological controls of variable transit times in zero‐order catchments , 2013 .
[78] Xiahong Feng,et al. The effect of soil hydrology on the oxygen and hydrogen isotopic compositions of plants’ source water , 2001 .
[79] T. Dawson,et al. Molecular Paleohydrology: Interpreting the Hydrogen-Isotopic Composition of Lipid Biomarkers from Photosynthesizing Organisms , 2012 .
[80] David G. Williams,et al. Hydrogen isotope fractionation during water uptake by woody xerophytes , 2007, Plant and Soil.
[81] By W. Dansga,et al. Stable isotopes in precipitation , 2010 .
[82] D. Stahle,et al. Climatologic and hydrologic influences on the oxygen isotope ratio of tree cellulose in coastal southern California during the late 20th century , 2013 .
[83] J. McDonnell,et al. Stable isotopes reveal linkages among ecohydrological processes in a seasonally dry tropical montane cloud forest , 2012 .
[84] R. Siegwolf,et al. Effects of environmental parameters, leaf physiological properties and leaf water relations on leaf water delta18O enrichment in different Eucalyptus species. , 2008, Plant, cell & environment.
[85] James P. McNamara,et al. Hydrological partitioning in the critical zone: Recent advances and opportunities for developing transferable understanding of water cycle dynamics , 2015 .
[86] N. Buchmann,et al. The δ18O of root crown water best reflects source water δ18O in different types of herbaceous species , 2006 .