Effect of mid-term drought on <i>Quercus pubescens</i> BVOCs' emission seasonality and their dependency on light and/or temperature
Biogenic volatile organic compounds (BVOCs) emitted by plants represent a large source of carbon compounds released into the atmosphere, where they account for precursors of tropospheric ozone and secondary organic aerosols. Being directly involved in air pollution and indirectly in climate chan...
| Published in: | Atmospheric Chemistry and Physics |
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| Main Authors: | , , , , , , , |
| Format: | Article |
| Language: | English |
| Published: |
Copernicus Publications
2017-06-01
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| Online Access: | http://www.atmos-chem-phys.net/17/7555/2017/acp-17-7555-2017.pdf |
| Summary: | Biogenic volatile organic compounds (BVOCs) emitted by plants
represent a large source of carbon compounds released into the atmosphere,
where they account for precursors of tropospheric ozone and secondary organic
aerosols. Being directly involved in air pollution and indirectly in climate
change, understanding what factors drive BVOC emissions is a prerequisite for
modeling their emissions and predict air pollution. The main algorithms
currently used to model BVOC emissions are mainly light and/or temperature
dependent. Additional factors such as seasonality and drought also influence
isoprene emissions, especially in the Mediterranean region, which is
characterized by a rather long drought period in summer. These factors are
increasingly included in models but only for the principal studied BVOC,
namely isoprene, but there are still some discrepancies in estimations of
emissions. In this study, the main BVOCs emitted by <i>Quercus
pubescens</i> – isoprene, methanol, acetone, acetaldehyde, formaldehyde, MACR,
MVK and ISOPOOH (these three last compounds detected under the same <i>m</i>∕<i>z</i>) – were
monitored with a PTR-ToF-MS over an entire seasonal cycle during both in situ
natural and amplified drought, which is expected with climate change.
Amplified drought impacted all studied BVOCs by reducing emissions in spring
and summer while increasing emissions in autumn. All six BVOCs monitored
showed daytime light and temperature dependencies while three BVOCs
(methanol, acetone and formaldehyde) also showed emissions during the night
despite the absence of light under constant temperature. Moreover, methanol
and acetaldehyde burst in the early morning and formaldehyde
deposition and uptake were also punctually observed, which were not assessed by
the classical temperature and light models. |
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| ISSN: | 1680-7316 1680-7324 |
