Measurement report: Leaf-scale gas exchange of atmospheric reactive trace species (NO2, NO, O3) at a northern hardwood forest in Michigan

被引:7
作者
Wang, Wei [1 ]
Ganzeveld, Laurens [2 ]
Rossabi, Samuel [1 ]
Hueber, Jacques [1 ]
Helmig, Detlev [1 ]
机构
[1] Univ Colorado, Inst Arctic & Alpine Res, Boulder, CO 80309 USA
[2] Wageningen Univ, Meteorol & Air Qual Sect, Wageningen, Netherlands
基金
美国国家科学基金会;
关键词
NITROGEN-DIOXIDE NO2; PICEA-ABIES TREES; DRY DEPOSITION; NITRIC-OXIDE; STOMATAL CONDUCTANCE; SCOTS PINE; OZONE; FLUXES; PLANTS; EMISSION;
D O I
10.5194/acp-20-11287-2020
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
During the Program for Research on Oxidants: PHotochemistry, Emissions, and Transport (PROPHET) campaign from 21 July to 3 August 2016, field experiments on leaf-level trace gas exchange of nitric oxide (NO), nitrogen dioxide (NO2), and ozone (O-3) were conducted for the first time on the native American tree species Pinus strobus (eastern white pine), Acer rubrum (red maple), Populus grandidentata (bigtooth aspen), and Quercus rubra (red oak) in a temperate hardwood forest in Michigan, USA. We measured the leaf-level trace gas exchange rates and investigated the existence of an NO2 compensation point, hypothesized based on a comparison of a previously observed average diurnal cycle of NOx (NO2 + NO) concentrations with that simulated using a multi-layer canopy exchange model. Known amounts of trace gases were introduced into a tree branch enclosure and a paired blank reference enclosure. The trace gas concentrations before and after the enclosures were measured, as well as the enclosed leaf area (single-sided) and gas flow rate to obtain the trace gas fluxes with respect to leaf surface. There was no detectable NO uptake for all tree types. The foliar NO2 and O-3 uptake largely followed a diurnal cycle, correlating with that of the leaf stomatal conductance. NO2 and O-3 fluxes were driven by their concentration gradient from ambient to leaf internal space. The NO2 loss rate at the leaf surface, equivalently the foliar NO2 deposition velocity toward the leaf surface, ranged from 0 to 3.6 mm s(-1) for bigtooth aspen and from 0 to 0.76 mm s(-1) for red oak, both of which are similar to 90% of the expected values based on the stomatal conductance of water. The deposition velocities for red maple and white pine ranged from 0.3 to 1.6 and from 0.01 to 1.1 mm s(-1), respectively, and were lower than predicted from the stomatal conductance, implying a mesophyll resistance to the uptake. Additionally, for white pine, the extrapolated velocity at zero stomatal conductance was 0.4 +/- 0.08 mm s(-1), indicating a non-stomatal uptake pathway. The NO2 compensation point was <= 60 ppt for all four tree species and indistinguishable from zero at the 95% confidence level. This agrees with recent reports for several European and California tree species but contradicts some earlier experimental results where the compensation points were found to be on the order of 1 ppb or higher. Given that the sampled tree types represent 80%-90% of the total leaf area at this site, these results negate the previously hypothesized important role of a leaf-scale NO2 compensation point. Consequently, to reconcile these findings, further detailed comparisons between the observed and simulated in- and above-canopy NOx concentrations and the leaf- and canopy-scale NOx fluxes, using the multi-layer canopy exchange model with consideration of the leaf-scale NOx deposition velocities as well as stomatal conductances reported here, are recommended.
引用
收藏
页码:11287 / 11304
页数:18
相关论文
共 63 条
[1]   Measurements of ozone removal by Scots pine shoots: calibration of a stomatal uptake model including the non-stomatal component [J].
Altimir, N ;
Tuovinen, JP ;
Vesala, T ;
Kulmala, M ;
Hari, P .
ATMOSPHERIC ENVIRONMENT, 2004, 38 (15) :2387-2398
[2]   Nitric oxide production in plants: an update [J].
Astier, Jeremy ;
Gross, Inonge ;
Durner, Joerg .
JOURNAL OF EXPERIMENTAL BOTANY, 2018, 69 (14) :3401-3411
[3]   Volatile organic compounds and nitric oxide as responses of a Brazilian tropical species to ozone: the emission profile of young and mature leaves [J].
Bison, Josiane Valeria ;
Cardoso-Gustavson, Poliana ;
de Moraes, Regina Maria ;
Pedrosa, Giselle da Silva ;
Cruz, Luciano Soares ;
Freschi, Luciano ;
de Souza, Silvia Ribeiro .
ENVIRONMENTAL SCIENCE AND POLLUTION RESEARCH, 2018, 25 (04) :3840-3848
[4]   Field investigations of nitrogen dioxide (NO2) exchange between plants and the atmosphere [J].
Breuninger, C. ;
Meixner, F. X. ;
Kesselmeier, J. .
ATMOSPHERIC CHEMISTRY AND PHYSICS, 2013, 13 (02) :773-790
[5]   The dynamic chamber method: trace gas exchange fluxes (NO, NO2, O3) between plants and the atmosphere in the laboratory and in the field [J].
Breuninger, C. ;
Oswald, R. ;
Kesselmeier, J. ;
Meixner, F. X. .
ATMOSPHERIC MEASUREMENT TECHNIQUES, 2012, 5 (05) :955-989
[6]   THIN WATER FILMS ON CONIFEROUS NEEDLES [J].
BURKHARDT, J ;
EIDEN, R .
ATMOSPHERIC ENVIRONMENT, 1994, 28 (12) :2001-2011
[7]   "Breath figures" on leaf surfaces-formation and effects of microscopic leaf wetness [J].
Burkhardt, Juergen ;
Hunsche, Mauricio .
FRONTIERS IN PLANT SCIENCE, 2013, 4
[8]  
Burkholder J. B., 2015, CHEM KINETICS PHOTOC
[9]   Nitrogen dioxide (NO2) uptake by vegetation controlled by atmospheric concentrations and plant stomatal aperture [J].
Chaparro-Suarez, I. G. ;
Meixner, F. X. ;
Kesselmeier, J. .
ATMOSPHERIC ENVIRONMENT, 2011, 45 (32) :5742-5750
[10]   Spatiotemporal Controls on Observed Daytime Ozone Deposition Velocity Over Northeastern US Forests During Summer [J].
Clifton, O. E. ;
Fiore, A. M. ;
Munger, J. W. ;
Wehr, R. .
JOURNAL OF GEOPHYSICAL RESEARCH-ATMOSPHERES, 2019, 124 (10) :5612-5628