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New Perspectives on CO_2, Temperature, and Light Effects on BVOC Emissions Using Online Measurements by PTR-MS and Cavity Ring-Down Spectroscopy

机译:使用PTR-MS和腔衰荡光谱在线测量方法测量CO_2,温度和光对BVOC排放的影响的新观点

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Volatile organic compounds (VOC) play important roles in atmospheric chemistry, plant ecology, and physiology, and biogenic VOC (BVOC) emitted by plants is the largest VOC source. Our knowledge about how environmental drivers (e.g., carbon, light, and temperature) may regulate BVOC emissions is limited because they are often not controlled. We combined a greenhouse facility to manipulate atmospheric CO2 ([CO2]) with proton-transfer-reaction mass spectrometry (PTR-MS) and cavity ring-down spectroscopy to investigate the regulation of BVOC in Norway spruce. Our results indicate a direct relationship between [CO2] and methanol and acetone emissions, and their temperature and light dependencies, possibly related to substrate availability. The composition of monoterpenes stored in needles remained constant, but emissions of mono-(linalool) and sesquiterpenes (beta-farnesene) increased at lower [CO2], with the effects being most pronounced at the highest air temperature. Pulse-labeling suggested an immediate incorporation of recently assimilated carbon into acetone, mono- and sesquiterpene emissions even under 50 ppm [CO2]. Our results provide new perspectives on CO2, temperature and light effects on BVOC emissions, in particular how they depend on stored pools and recent photosynthetic products. Future studies using smaller but more seedlings may allow sufficient replication to examine the physiological mechanisms behind the BVOC responses.
机译:挥发性有机化合物(VOC)在大气化学,植物生态学和生理学中起着重要作用,而植物排放的生物源VOC(BVOC)是最大的VOC来源。我们对环境驱动因素(例如碳,光和温度)如何调节BVOC排放的了解有限,因为它们通常不受控制。我们结合了温室设施来处理大气中的CO2([CO2]),质子转移反应质谱法(PTR-MS)和腔衰荡光谱法,以研究挪威云杉中BVOC的调节。我们的结果表明,[CO2]与甲醇和丙酮的排放量,温度和光的依赖性之间存在直接关系,这可能与基材的可用性有关。储存在针头中的单萜的组成保持不变,但是在较低的[CO2]下单-(芳樟醇)和倍半萜(β-法呢烯)的排放量增加,在最高空气温度下影响最为明显。脉冲标记表明即使在50 ppm [CO2]以下,近期吸收的碳也可立即掺入丙酮,单萜和倍半萜中。我们的研究结果提供了有关CO2,温度和光对BVOC排放的影响的新观点,尤其是它们如何依赖于储存池和最近的光合产物。未来使用较小但更多的幼苗的研究可能允许充分复制以检查BVOC反应背后的生理机制。

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