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Effect of LED Light Wavelength on Chrysanthemum Growth

LED광 파장이 국화생육에 미치는 영향

  • Im, Jae Un (Dept. of Agricultural Eng., Gyeongsang National Univ. (Insti. of Agric. & Life Sci.)) ;
  • Yoon, Yong Cheol (Dept. of Agricultural Eng., Gyeongsang National Univ. (Insti. of Agric. & Life Sci.)) ;
  • Seo, Kwang Wook (The Korean Intellectual Property Office) ;
  • Kim, Kyu Hyeong (Dept. of Electronics and Telecommunications Research Institute) ;
  • Moon, Ae Kyung (Dept. of Electronics and Telecommunications Research Institute) ;
  • Kim, Hyeon Tae (Dept. of Bio-Industrial Machinery Eng., Gyeongsang National Univ. (Insti. of Agric. & Life Sci.))
  • 임재운 (경상대학학교 지역환경기반공학과(농업생명과학연구원)) ;
  • 윤용철 (경상대학학교 지역환경기반공학과(농업생명과학연구원)) ;
  • 서광욱 (대한민국 특허청 식품생물자원심사과) ;
  • 김규형 (한국전자통신연구원) ;
  • 문애경 (한국전자통신연구원) ;
  • 김현태 (경상대학교 생물산업기계공학과(농업생명과학연구원))
  • Received : 2013.01.24
  • Accepted : 2013.02.28
  • Published : 2013.03.31

Abstract

In this study, I was focusing on LED (Light Emitting Diode) light effect in growth of chrysanthemum. For this reason, I formed six monochromatic lights (red 650 nm, 647 nm, 622 nm, blue 463 nm, 450 nm, white), six mixed lights sources red : blue (9 : 1, 8 : 2, 7 : 3, 6 : 4, 5 : 5) and 3 control beds in light sources ratio between rad : blue (8 : 2) including sun light. It was totally 15 control beds. Depending on light investigation time in growth, 6/6 (on/off) was highest in the length of plant, the number of leaves, the fresh dry and leaf area. But statistical significance wasn't accepted in general. In case of monochromatic lights, length of plant and leaf area is biggest in the Blue 450 mm and the length of root is highest in RED 650 mm. Except for this 3 measuring points (length of plant, the number of leaves and fresh weight), sun light and white was highest. Besides there are monochromatic light effect but various wavelength range in light sources are needed to crop growth. In terms of mixed light resources, except for sun light, It turned out the length of plant is highest in the highest red light rate red : blue (9 : 1), and Red : white (7 : 3) is highest in fresh weight and dry weight. The sun light is the highest one in the leaf area. The results from LED light effect in growth of chrysanthemum are obviously effect on growth and building up the shape. We need to choose suitable light sources in the monochromatic lights and mixed lights for growing high quality of chrysanthemum or Supplemental Lighting.

국화생육에 있어서 LED광이 미치는 영향을 구명하기 위해서 국화 'Shinma'를 대상으로 단일광 적색광(Red) 650nm, 647nm, 622nm, 청색광(Blue) 463nm, 450nm, 백색광(White)과 혼합광(적색광(Red) :청색광(Blue)-(9 : 1, 8 : 2, 7 : 3, 6 : 4, 5 : 5), 적색광(Red) :백색광(White)-(7 : 3) 그리고 광원의 조사시간에 따른 LED효과를 구명하고자 광원 비율 적색광(Red) : 청색광(Blue)-(8 : 2)의 컨트롤 베드를 3개로 구성하고, 대조구(태양광)를 포함하여 총 15개의 컨트롤 베드를 구성하여 수행하였다. 광 조사시간에 따른 생육에서는 6/6(on/off)에서 초장, 엽수, 생체 중, 엽면적이 높게 나타났지만, 전체적으로 통계적인 유의성은 인정되지 않았다. 단일광원의 경우 청색광(Blue) 450nm에서 초장과 엽면적이 가장 크게 나타났고, 근장에서는 적색광(Red) 650nm에서 가장 높게 나타났다. 그 외의 측정항목에서는 대조구(태양광)와 백색광(White)에서 높게 나타나, 단일광원에 대한 영향도 있지만, 다양한 파장대의 광원도 작물 생육에 필요한 것으로 판단된다. 혼합광의 경우 단일광과 달리 대조구(태양광)를 제외하고 적색광(Red)의 비율이 가장 높은 적색광(Red) :청색광(Blue)-(9 : 1)에서 초장이 가장 높게 나타났으며, 생체중과 건물중에서는 적색광(Red) : 백색광(White)-(7 : 3)에서 가장 높게 나타났다. 그 다음으로는 대조구(태양광)에서 높게 나타났으며, 엽면적에 있어 대조구(태양광)가 가장 높게 나타났다. 국화생육에 있어서 LED광이 미치는 영향을 구명한 결과 국화의 생장 및 형태형성에 분명히 영향을 미치는 것으로 보였으며, 단일광과 혼합광에 대해 적절한 광원의 선택은 보광의 목적이나 고품질 국화생산을 위해 필요하다고 판단된다.

Keywords

References

  1. An, C.G., Y.H. Hwang, J.U. An, H.K. Yoon, Y.H. Chang, G.M. Shon, and S.J. Hwang. 2011. Effect of LEDs (Light Emitting Diodes) irradiation on growth of paprika (Capsicum annuum 'Cupra'). J. Bio-Env. Cont. 20:253-257 (in Korean).
  2. Cho, J.Y., D.M. Son, J.M. Kim, B.S. Seo, S.Y. Yang, B.W. Kim, and B.G. Heo. 2008. Effects ofvarious LEDs on the seed germination, growth and physiological activities of rape (Brassica napus) sprout vegetable. Korean J. Plant Res. 21(4):304-309 (in Korean).
  3. Choi, I.L., J.H. Won, H.J. Jung, and H.M. Kang. 2009. Effect of red LED, blue LED and UVa light sources on coloration of paprika fruits. J. Bio-Env. Cont. 18:431-435 (in Korean).
  4. Choi, Y.W. 2003. Effectofred, blue, and Far - red LEDs for night break on growth, flowering, and photosynthetic rate in Perilla ocymoides. J. Kor. Soc. Hort. Sci. 44(4):442-446 (in Korean).
  5. Choi, Y.W., C.K. Ahn, J.S. Kang, B.G. Son, and I.S. Choi. 2003. Growth, photomorphogenesis, and photosynthesis of Perilla grown under red, blue light emitting diodes and light intensities. J. Kor. Soc. Hort. Sci. 44(3):281-286 (in Korean).
  6. Heo, J.W., Y.B. Lee, Y.S. Chang, J.T. Lee, and D.B. Lee. 2010. Effects of light qwality and lighting type using an LED chamber system on chrysanthemum growth and development cultured in vitro. J. Environ Agric. 29(4):374-380 (in Korean). https://doi.org/10.5338/KJEA.2010.29.4.374
  7. Hoenecke, M.E., R.J. Bula, and T.W. Tibbitts. 1992. Importance of blue photon levels for lettuce seedlings grown under red-light-emitting diodes. Hort. Sci. 27:427-430.
  8. Lee, J.G., S.S. Oh, S.H. Cha, and Y.A. Jang. 2010. Effects of red/blue light ratio and short-term light quality conversion on growth and anthocyanin contents of baby leaf lettuce. J. Bio-Env. Cont. 19(4):351-359 (in Korean).
  9. McMahon, M.J., J.E. Kelly, and D.R. Decoteau. 1991. Growth of Dendranthema ${\times}$ grandiflorum (Ramat.) Kitamura under various spectral filters. J. Amer. Soc. Hort. Sci. 116(6):950-954.
  10. Moreira da Silva, M.H. and P.C. Debergh. 1997. The effect of light quality on the morphogenesis of in vitro cultures of Azorina vidalii (Wats.) Feer. Plant Cell, Tissue Organ Culture 51:187-193. https://doi.org/10.1023/A:1005988621036
  11. Mortensen, L.M. and E. Stromme. 1987. Effects of light quality on some greenhouse crops. Sci. Hort. 33:27-36. https://doi.org/10.1016/0304-4238(87)90029-X
  12. Nishimura, T., S.M.A. Zobayed, T. Kozai, and E. Goto. 2006. Effect of light quality of blue and red fluorescent lampson growth of St. John's wort (Hypericum perforatum L.) J. Shita 18:225-229. https://doi.org/10.2525/shita.18.225
  13. Nishimura, T., S.M.A. Zobayed, T. Kozai, and E. Goto. 2007. Medicinally important secondary metabolites and growth of Hyperricum perforatum L. plants as affected by light quality and intensity. Environ. Control Biol. 45:113-120. https://doi.org/10.2525/ecb.45.113
  14. Okamoto, K., T. Yanagi, S. Takita, M. Tanaka, T. Higuchi, Y. Ushida, and H. Watanabe. 1996. Development of plant growth apparatus using blue and red LED as artificial light source. Acta Hort. 440:111-116.
  15. Rajapakse, N.C. and J.W. Kelly. 1992. Regulation of chrysanthemum growth by spectral filters. J. Amer. Soc. Hort. Sci. 117(3):481-485.
  16. Shin, K.S., H.N. Murthy, J.W. Heo, E.J. Hahn, and K.Y. Paek. 2008. The effect of light quality on the growth and development of in vitro cultured Doritaenopsis plants. Acta Physiol. Plant 30:339-343 (in Korean). https://doi.org/10.1007/s11738-007-0128-0
  17. Suh, W.M., J.W. Leem, Y.J. Kim, Y.B. Min, H.T. Kim, M.R. Huh, and Y.C. Yoon. 2010. Heating effect by electric radiator in greenhouse of chrysanthemum cultivation. J. Agri. & Life Science 44(4):79-85 (in Korean).
  18. Um, Y.C., Y.A. Jang, J.G. Lee, S.Y. Kim, S.R. Cheong, S.S. Oh, S.H. Cha, and S.C. Hong. 2009. Effects of selective light sources on seedling quality of tomato and cucumber in closed nursery system. J. Bio-Env. Cont. 18:370-376 (in Korean).
  19. Warrington, I.J. and K.J. Mitchell. 1976. The influence of blue and red-biased light spectra on the growth and development of plants. Agric. Meteorol. 16:247-262. https://doi.org/10.1016/0002-1571(76)90045-5
  20. Wongnok, A., C. Piluek, and S. Tantivivat. 2008. Effects of light emitting diodes on micropropagation of Phalaenopsis orchids. Acta Hort. 788:149-156.
  21. Yanagi, T., K. Okamoto, and S. Takita. 1996. Effects of blue, red, and blue/red lights of two different PPF levels on growth and morphogenesis of lettuce plants. Acta Hort. 440:117-122.