生菜室内栽培中,光周期对生物质生产的能量效率有影响

IF 2.2 4区 生物学 Q2 PLANT SCIENCES
Luciano M. Silva, Larissa P. Cruz, Vinícius S. Pacheco, Eduardo C. Machado, Luis Felipe V. Purquerio, Rafael V. Ribeiro
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引用次数: 4

摘要

一些研究表明,长光周期导致高生物量积累,另一些研究报告了缺乏黑暗造成的损害。由于室内生产取决于有利的成本效益比,因此必须评估led消耗的每能量产生的生物质。我们预计在长光周期下,由于昼夜周期的原因,光合作用和生物质生产的能量效率会下降。在不同的光周期制度下,在营养液中培养莴苣植株。在每个光周期(12、14、16、18、20、22和24 h),植株在21天后发芽和收获。在24小时内监测叶片气体交换,而在每种状态下生长20天后评估植物生长和led消耗的能量。虽然最大光合速率在不同光周期下没有变化,但以叶面积为基础的日综合CO2同化在20、22和24 h时较高。生物量积累、叶数和叶面积在12 ~ 18 h间呈线性增加。在超过18 h的处理条件下,延长光周期并没有增加叶片数量和干质量积累,反而减少了叶面积和鲜质量。生物量生产的能量效率在12 ~ 18 h达到最高,在22 ~ 24 h达到最低。生菜生长的最佳光周期为18 h,因为最短的光周期可以使植株生长最快,同时保持较高的生物量生产能量效率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Energetic efficiency of biomass production is affected by photoperiod in indoor lettuce cultivation

Energetic efficiency of biomass production is affected by photoperiod in indoor lettuce cultivation

Some studies have shown that long photoperiods result in high biomass accumulation, others have reported damage caused by the lack of darkness. Since indoor production depends on a favorable cost-benefit ratio, it is essential to evaluate the biomass produced per energy consumed by LEDs. We expected that photosynthesis and energetic efficiency of biomass production would decrease under long photoperiods due to the circadian cycle. Lettuce (Lactuca sativa L.) plants were grown in nutrient solution under different photoperiod regimes. In each photoperiod (12, 14, 16, 18, 20, 22, and 24 h), plants were germinated and harvested after 21 days. Leaf gas exchange was monitored over 24 h, whereas plant growth and energy consumed by LEDs were evaluated after 20 days of growth in each regime. Although the maximum photosynthetic rates have not changed when varying photoperiod, the daily-integrated CO2 assimilation on leaf area basis was higher at 20, 22, and 24 h. Biomass accumulation, leaf number, and leaf area increased linearly between 12 and 18 h of photoperiod. In regimes longer than 18 h, extending the photoperiod did not increase the number of leaves and dry mass accumulation and decreased leaf area and fresh mass. The highest energetic efficiency of biomass production was noticed between 12 and 18 h, while the lowest one was found at 22 and 24 h of photoperiod. The best photoperiod for growing lettuce was 18 h, as it was the shortest photoperiod that led to the highest plant growth while maintaining high energetic efficiency of biomass production.

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来源期刊
CiteScore
4.20
自引率
7.70%
发文量
32
期刊介绍: The journal does not publish articles in taxonomy, anatomy, systematics and ecology unless they have a physiological approach related to the following sections: Biochemical Processes: primary and secondary metabolism, and biochemistry; Photobiology and Photosynthesis Processes; Cell Biology; Genes and Development; Plant Molecular Biology; Signaling and Response; Plant Nutrition; Growth and Differentiation: seed physiology, hormonal physiology and photomorphogenesis; Post-Harvest Physiology; Ecophysiology/Crop Physiology and Stress Physiology; Applied Plant Ecology; Plant-Microbe and Plant-Insect Interactions; Instrumentation in Plant Physiology; Education in Plant Physiology.
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