Intensity of Sole-source Light-emitting Diodes Affects Growth, Yield, and Quality of Brassicaceae Microgreens

Интенсивность светодиодов с единственным источником света влияет на рост, урожайность и качество микрозелени Brassicaceae
David Llewellyn, Youbin Zheng, Chase Jones-Baumgardt, Qinglu Ying
2019-07-01

Brassicaceae microgreensfresh weight and dry weight responsehypocotyl length reductionphotosynthetic photon flux density (PPFD)sole-source LEDs
Indoor farming is an increasingly popular approach for growing leafy vegetables, and under this production system, artificial light provides the sole source (SS) of radiation for photosynthesis and light signaling. With newer horticultural light-emitting diodes (LEDs), growers have the ability to manipulate the lighting environment to achieve specific production goals. However, there is limited research on LED lighting specific to microgreen production, and available research shows that there is variability in how microgreens respond to their lighting environment. The present study examined the effects of SS light intensity (LI) on growth, yield, and quality of kale ( Brassica napus L. ‘Red Russian’), cabbage ( Brassica oleracea L.), arugula ( Eruca sativa L.), and mustard ( Brassica juncea L. ‘Ruby Streaks’) microgreens grown in a walk-in growth chamber. SS LEDs were used to provide six target photosynthetic photon flux density density ( PPFD ) treatments: 100, 200, 300, 400, 500, and 600 μmol·m −2 ·s −1 with a photon flux ratio of 15 blue: 85 red and a 16-hour photoperiod. As LI increased from 100 to 600 μmol·m −2 · s −1 , fresh weight (FW) increased by 0.59 kg·m −2 (36%), 0.70 kg·m −2 (56%), 0.71 kg·m −2 (76%), and 0.67 kg·m −2 (82%) for kale, cabbage, arugula, and mustard, respectively. Similarly, dry weight (DW) increased by 47 g·m −2 (65%), 45 g·m −2 (69%), 64 g·m −2 (122%), and 65 g·m −2 (145%) for kale, cabbage, arugula, and mustard, respectively, as LI increased from 100 to 600 μmol·m −2 · s −1 . Increasing LI decreased hypocotyl length and hue angle linearly in all genotypes. Saturation of cabbage and mustard decreased linearly by 18% and 36%, respectively, as LI increased from 100 to 600 μmol·m −2 ·s −1 . Growers can use the results of this study to optimize SS LI for their production systems, genotypes, and production goals.
1
Dry weight rose substantially with higher light intensity: increases of 47–65 g·m−2 (65%–145%) for kale, cabbage, arugula, and mustard between 100 and 600 μmol·m−2·s−1.
2
Higher sole-source light intensity linearly decreased hypocotyl length and hue angle in all tested Brassicaceae microgreen genotypes.
3
Increasing sole-source LED photosynthetic photon flux density (PPFD) from 100 to 600 μmol·m−2·s−1 increased fresh weight by 0.59–0.71 kg·m−2 (36%–82%) across kale, cabbage, arugula, and mustard microgreens.
4
Results indicate growers can optimize sole-source LED light intensity by genotype and production goals to improve microgreen yield and quality.
5
Saturation (color intensity) of cabbage and mustard decreased linearly by 18% and 36%, respectively, as PPFD increased from 100 to 600 μmol·m−2·s−1.

Brassicaceae microgreens (kale, cabbage, arugula, and mustard) grown under sole-source LED lighting

Effects of sole-source LED light intensity (PPFD 100–600 μmol·m−2·s−1, 15B:85R, 16-h photoperiod) on growth, yield, and quality metrics (fresh weight, dry weight, hypocotyl length, color hue and saturation) of the microgreens

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2019-07-01
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David Llewellyn
Youbin Zheng
Chase Jones-Baumgardt
Qinglu Ying
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