Light Spectra Have Minimal Effects on Rooting and Vegetative Growth Responses of Clonal Cannabis Cuttings
暂无分享,去创建一个
Youbin Zheng | D. Llewellyn | M. Moher | Maxwell P. A. Jones | Scott Golem | Elizabeth Foley | Steve Dinka
[1] Youbin Zheng,et al. Light intensity can be used to modify the growth and morphological characteristics of cannabis during the vegetative stage of indoor production , 2022, Industrial Crops and Products.
[2] Arend-Jan Both,et al. On the Technical Performance Characteristics of Horticultural Lamps , 2021, AgriEngineering.
[3] B. Bugbee,et al. Cannabis lighting: Decreasing blue photon fraction increases yield but efficacy is more important for cost effective production of cannabinoids , 2021, PloS one.
[4] Y. Zheng. Soilless production of drug-type Cannabis sativa , 2021 .
[5] Youbin Zheng,et al. Cannabis Yield, Potency, and Leaf Photosynthesis Respond Differently to Increasing Light Levels in an Indoor Environment , 2021, Frontiers in Plant Science.
[6] Chanhui Lee,et al. Blue light and NAA treatment significantly improve rooting on single leaf-bud cutting of Chrysanthemum via upregulated rooting-related genes , 2020 .
[7] B. Bugbee,et al. From physics to fixtures to food: current and potential LED efficacy , 2020, Horticulture Research.
[8] Youbin Zheng,et al. Responses of yield and appearance quality of four Brassicaceae microgreens to varied blue light proportion in red and blue light-emitting diodes lighting , 2020 .
[9] Youbin Zheng,et al. Intensity of Sole-source Light-emitting Diodes Affects Growth, Yield, and Quality of Brassicaceae Microgreens , 2019, HortScience.
[10] M. Lefsrud,et al. An Update on Plant Photobiology and Implications for Cannabis Production , 2019, Front. Plant Sci..
[11] L. Campbell,et al. Phenotypic plasticity influences the success of clonal propagation in industrial pharmaceutical Cannabis sativa , 2019, PloS one.
[12] R. Lopez,et al. Comparison of Supplemental Lighting Provided by High-pressure Sodium Lamps or Light-emitting Diodes for the Propagation and Finishing of Bedding Plants in a Commercial Greenhouse , 2019, HortScience.
[13] Youbin Zheng,et al. Variation of phenotypic responses to lighting using a combination of red and blue light-emitting diodes versus darkness in seedlings of 18 vegetable genotypes , 2019, Canadian Journal of Plant Science.
[14] M. Dixon,et al. Blue light associated with low phytochrome activity can promote elongation growth as shade-avoidance response: A comparison with red light in four bedding plant species , 2018, Environmental and Experimental Botany.
[15] E. Runkle,et al. Spectral effects of light-emitting diodes on plant growth, visual color quality, and photosynthetic photon efficacy: White versus blue plus red radiation , 2018, PloS one.
[16] Athanasios Koukounaras,et al. Current status and recent achievements in the field of horticulture with the use of light-emitting diodes (LEDs) , 2018 .
[17] M. Dixon,et al. Vegetative propagation of cannabis by stem cuttings: effects of leaf number, cutting position, rooting hormone, and leaf tip removal , 2018, Canadian Journal of Plant Science.
[18] S. Neugart,et al. UV-A radiation effects on higher plants: Exploring the known unknown. , 2017, Plant science : an international journal of experimental plant biology.
[19] Anshita Agarwal,et al. Artificial Lighting System for Plant Growth and Development: Chronological Advancement, Working Principles, and Comparative Assessment , 2017 .
[20] O. Kayser,et al. The Cannabis Plant: Botanical Aspects , 2017 .
[21] E. Small. Medical Marijuana: Theory and Practice , 2016 .
[22] A. Cano,et al. Quantitative Analysis of Adventitious Root Growth Phenotypes in Carnation Stem Cuttings , 2015, PloS one.
[23] Bernhard Roth,et al. LEDs for Energy Efficient Greenhouse Lighting , 2014, 1406.3016.
[24] Jacob A. Nelson,et al. Economic Analysis of Greenhouse Lighting: Light Emitting Diodes vs. High Intensity Discharge Fixtures , 2014, PloS one.
[25] Roberto G. Lopez,et al. Comparison of Supplemental Lighting from High-pressure Sodium Lamps and Light-emitting Diodes during Bedding Plant Seedling Production , 2014 .
[26] David J Potter. A review of the cultivation and processing of cannabis (Cannabis sativa L.) for production of prescription medicines in the UK. , 2014, Drug testing and analysis.
[27] R. Lopez,et al. Cuttings of Impatiens, Pelargonium, and Petunia Propagated under Light-emitting Diodes and High-pressure Sodium Lamps Have Comparable Growth, Morphology, Gas Exchange, and Post-transplant Performance , 2013 .
[28] Naichia Yeh,et al. High-brightness LEDs—Energy efficient lighting sources and their potential in indoor plant cultivation , 2009 .
[29] Ren Wang,et al. A micropropagation system for cloning of hemp (Cannabis Sativa L.) by shoot tip culture , 2009 .
[30] W. A. Gentner,et al. Greenhouse propagation of Cannabis Sativa L. by vegetative cuttings , 1979, Economic Botany.
[31] J. C. Sager,et al. Photosynthetic Efficiency and Phytochrome Photoequilibria Determination Using Spectral Data , 1988 .
[32] K. Mccree. THE ACTION SPECTRUM, ABSORPTANCE AND QUANTUM YIELD OF PHOTOSYNTHESIS IN CROP PLANTS , 1971 .