Limiting global mean temperature changes to well below 2 degrees C likely requires a rapid and large-scale deployment of negative emission technologies (NETs). Assessments so far have shown a high potential of biomass-based terrestrial NETs, but only a few assessments have included effects of the commonly found nutrient-deficient soils on biomass production. Here, we investigate the deployment of enhanced weathering (EW) to supply nutrients to areas of afforestation-reforestation and naturally growing forests (AR) and bioenergy grasses (BG) that are deficient in phosphorus (P), besides the impacts on soil hydrology. Using stoichiometric ratios and biomass estimates from two established vegetation models, we calculated the nutrient demand of AR and BG. Insufficient geogenic P supply limits C storage in biomass. For a mean P demand by AR and a low-geogenic-P-supply scenario, AR would sequester 119 Gt C in biomass; for a high-geogenic-P-supply and low-AR-P-demand scenario, 187 Gt C would be sequestered in biomass; and for a low geogenic P supply and high AR P demand, only 92 GtC would be accumulated by biomass. An average amount of similar to 150 Gt basalt powder applied for EW would be needed to close global P gaps and completely sequester projected amounts of 190 Gt C during the years 2006-2099 for the mean AR P demand scenario (2-362 Gt basalt powder for the low-AR-P-demand and for the high-AR-P-demand scenarios would be necessary, respectively). The average potential of carbon sequestration by EW until 2099 is similar to 12 GtC (similar to .2-similar to 27 Gt C) for the specified scenarios (excluding additional carbon sequestration via alkalinity production). For BG, 8 kg basalt m(-2) a(-1) might, on average, replenish the exported potassium (K) and P by harvest. Using pedotransfer functions, we show that the impacts of basalt powder application on soil hydraulic conductivity and plant-available water, to close predicted P gaps, would depend on basalt and soil texture, but in general the impacts are marginal. We show that EW could potentially close the projected P gaps of an AR scenario and nutrients exported by BG harvest, which would decrease or replace the use of industrial fertilizers. Besides that, EW ameliorates the soil's capacity to retain nutrients and soil pH and replenish soil nutrient pools. Lastly, EW application could improve plant-available-water capacity depending on deployed amounts of rock powder - adding a new dimension to the coupling of land-based biomass NETs with EW.
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Univ Calif Davis, Inst Environm, Davis, CA USA
Princeton Univ, High Meadows Environm Inst, Princeton, NJ USA
Princeton Univ, High Meadows Environm Inst, Princeton, NJ 08544 USAUniv Calif Davis, Inst Environm, Davis, CA USA
Almaraz, Maya
Simmonds, Maegen
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Pivot Bio, Berkeley, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Simmonds, Maegen
Boudinot, F. Garrett
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Cornell Univ, Dept Ecol & Evolutionary Biol, Ithaca, NY USAUniv Calif Davis, Inst Environm, Davis, CA USA
Boudinot, F. Garrett
Di Vittorio, Alan V.
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Lawrence Berkeley Natl Lab, Berkeley, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Di Vittorio, Alan V.
Bingham, Nina
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Univ Calif Davis, Dept Land Air & Water Resources, Davis, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Bingham, Nina
Khalsa, Sat Darshan S.
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Univ Calif Davis, Dept Plant Sci, Davis, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Khalsa, Sat Darshan S.
Ostoja, Steven
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Univ Calif Davis, Inst Environm, Davis, CA USA
USDA Calif Climate Hub, Agr Res Serv, Davis, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Ostoja, Steven
Scow, Kate
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Univ Calif Davis, Dept Land Air & Water Resources, Davis, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Scow, Kate
Jones, Andrew
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Lawrence Berkeley Natl Lab, Berkeley, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Jones, Andrew
Holzer, Iris
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机构:Univ Calif Davis, Inst Environm, Davis, CA USA
Holzer, Iris
Manaigo, Erin
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Univ Calif Davis, Dept Land Air & Water Resources, Davis, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Manaigo, Erin
Geoghegan, Emily
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Cornell Univ, Dept Ecol & Evolutionary Biol, Ithaca, NY USAUniv Calif Davis, Inst Environm, Davis, CA USA
Geoghegan, Emily
Goertzen, Heath
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Univ Calif Davis, Inst Environm, Davis, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
Goertzen, Heath
Silver, Whendee L.
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Univ Calif Berkeley, Dept Environm Sci Policy & Management, Berkeley, CA USAUniv Calif Davis, Inst Environm, Davis, CA USA
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Michigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USAMichigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
Russell, Mackenzie D.
Heckman, Katherine A.
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US Forest Serv, USDA, Northern Res Stn, Houghton, MI 49931 USAMichigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
Heckman, Katherine A.
Pan, Lei
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Michigan Technol Univ, Dept Chem Engn, Houghton, MI USAMichigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
Pan, Lei
Ye, Xinyu
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Michigan Technol Univ, Dept Civil Environm & Geospatial Engn, Houghton, MI USAMichigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
Ye, Xinyu
Zalesny, Ronald S.
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US Forest Serv, USDA, Northern Res Stn, Rhinelander, WI USAMichigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
Zalesny, Ronald S.
Kane, Evan S.
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Michigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
US Forest Serv, USDA, Northern Res Stn, Houghton, MI 49931 USAMichigan Technol Univ, Coll Forest Resources & Environm Sci, Houghton, MI USA
机构:
Lawrence Livermore Natl Lab, Computat Engn Div, 7000 East Ave, Livermore, CA 94550 USALawrence Livermore Natl Lab, Computat Engn Div, 7000 East Ave, Livermore, CA 94550 USA
Li, Wenqin
Wright, Mark M.
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Iowa State Univ, Dept Mech Engn, Ames, IA 50011 USA
Iowa State Univ, Bioecon Inst, Ames, IA 50011 USALawrence Livermore Natl Lab, Computat Engn Div, 7000 East Ave, Livermore, CA 94550 USA