Literature DB >> 18550152

Atmospheric deposition of carbon and nutrients across an arid metropolitan area.

Kathleen A Lohse1, Diane Hope, Ryan Sponseller, Jonathan O Allen, Nancy B Grimm.   

Abstract

Urbanization is increasing rapidly in semi-arid environments and is predicted to alter atmospheric deposition of nutrients and pollutants to cities as well as to ecosystems downwind. We examined patterns of wet and coarse dry deposition chemistry over a five-year period at 7 sites across the Central Arizona-Phoenix (CAP) study area, one of two urban sites within the National Science Foundation's Long-Term Ecological Research (LTER) program. Wet and dry deposition of organic carbon (oC) were significantly elevated in the urban core; in contrast, mean annual wet and dry fluxes of nitrogen (N) were low (<6 kg ha(-1) yr(-1)) compared to previous estimates and did not differ significantly among sites. Wet deposition of sulfate (SO(4)2-) was high across CAP (mean 1.39 kg ha(-1) yr(-1) as S) and represented the dominant anion in rainfall. Dry deposition rates did not show strong seasonal trends with the exception of oC, which was 3-fold higher in winter than in summer; ammonium (NH4+) deposition was high but more variable. Dry deposition of NO3- and oC was strongly correlated with particulate base cations and dust-derived soluble reactive phosphorus (SRP), suggesting that urban-derived dust is scrubbing the atmosphere of acidic gases and entrained particles and increasing local deposition. Differences between measured and predicted rates of dry N deposition to the urban core may be explained by incomplete collection of gas phase N on surrogate deposition surfaces in this hot and arid environment. The extent of urban enhancement of cations and oC inputs to desert ecosystems appears to be restricted to the urbanized metropolitan area rather than extending far downwind, although a low number of sites make it difficult to resolve this spatial pattern. Nevertheless, wet and dry inputs may be important for biogeochemical cycles in nutrient and carbon-poor desert ecosystems within and near arid cities.

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Year:  2008        PMID: 18550152     DOI: 10.1016/j.scitotenv.2008.04.044

Source DB:  PubMed          Journal:  Sci Total Environ        ISSN: 0048-9697            Impact factor:   7.963


  5 in total

1.  Toward the improvement of total nitrogen deposition budgets in the United States.

Authors:  J T Walker; G Beachley; H M Amos; J S Baron; J Bash; R Baumgardner; M D Bell; K B Benedict; X Chen; D W Clow; A Cole; J G Coughlin; K Cruz; R W Daly; S M Decina; E M Elliott; M E Fenn; L Ganzeveld; K Gebhart; S S Isil; B M Kerschner; R S Larson; T Lavery; G G Lear; T Macy; M A Mast; K Mishoe; K H Morris; P E Padgett; R V Pouyat; M Puchalski; H O T Pye; A W Rea; M F Rhodes; C M Rogers; R Saylor; R Scheffe; B A Schichtel; D B Schwede; G A Sexstone; B C Sive; R Sosa Echeverría; P H Templer; T Thompson; D Tong; G A Wetherbee; T H Whitlow; Z Wu; Z Yu; L Zhang
Journal:  Sci Total Environ       Date:  2019-07-08       Impact factor: 7.963

2.  An aerosol climatology for a rapidly growing arid region (southern Arizona): Major aerosol species and remotely sensed aerosol properties.

Authors:  Armin Sorooshian; Anna Wonaschütz; Elias G Jarjour; Bryce I Hashimoto; Bret A Schichtel; Eric A Betterton
Journal:  J Geophys Res Atmos       Date:  2011-10-01       Impact factor: 4.261

3.  Ambient urban N deposition drives increased biomass and total plant N in two native prairie grass species in the U.S. Southern Great Plains.

Authors:  Alexandra G Ponette-González; Michelle L Green; Justin McCullars; Laura Gough
Journal:  PLoS One       Date:  2021-05-06       Impact factor: 3.240

4.  Evolution of Monitoring and Modeling of Reactive Nitrogen Deposition in the United States.

Authors:  John T Walker; Greg Beachley
Journal:  EM (Pittsburgh Pa)       Date:  2019-07-19

5.  Characterization of organic nitrogen in aerosols at a forest site in the southern Appalachian Mountains.

Authors:  Xi Chen; Mingjie Xie; Michael D Hays; Eric Edgerton; Donna Schwede; John T Walker
Journal:  Atmos Chem Phys       Date:  2018-05-16       Impact factor: 6.133

  5 in total

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