All Issue

2021 Vol.39, Issue 1 Preview Page

Research Article

28 February 2021. pp. 49-61
Abstract
References
1
Armitage AM, Tsujita MJ (1979) Supplemental lighting and nitrogen nutrition effects on yield and quality of Forever Yours roses. Can J Plant Sci 59:343-350. doi:10.4141/cjps79-056 10.4141/cjps79-056
2
Assmann SM, Shimazaki KI (1999) The multisensory guard cell. Stomatal responses to blue light and abscisic acid. Plant Physiol 119:809-816. doi:10.1104/pp.119.3.809 10.1104/pp.119.3.80910069820PMC1539207
3
Bredmose N (1993) Effects of year-round supplementary lighting on shoot development, flowering and quality of two glasshouse rose cultivars. Sci Hortic 54:69-85. doi:10.1016/0304-4238(93)90084-4 10.1016/0304-4238(93)90084-4
4
Choi YH, Kwon SK, Choi GL, Kang NJ, Chun H, Cho MW, Seo TH, Roh MH, Lee SC, et al. (2008) Effect of supplemental lighting of sub-compensation intensities on growth of Rosa hybrida L. 'Vital'. J Bio-Environ Control 17:132-137
5
Chon YS, Jeong KJ, Hong JK, Shin HS, Yun JG (2018) Effect of supplementary lighting and heat lamps on greenhouse environment and flowering of cut roses. Flower Res J 26:19-27. doi:10.11623/frj.2018.26.1.03 10.11623/frj.2018.26.1.03
6
Dole J, Warner R (2017) Lighting greenhouse cut flowers. In R Lopez, ES Runkle (eds.). Light management in controlled environments. Meister Media Worldwide, Willoughby, OH, USA, pp 152-158
7
Dole JM, Wilkins HF (2005) Floriculture: principles and species. Prentice-Hall, Upper Saddle River, NJ, USA, pp 808-827
8
Dörr OS, Brezina S, Rauhut D, Mibus H (2020) Plant architecture and phytochemical composition of basil (Ocimum basilicum L.) under the influence of light from microwave plasma and high-pressure sodium lamps. J Photochem Photobiol B: Biol 202:111678. doi:10.1016/j.jphotobiol.2019.111678 10.1016/j.jphotobiol.2019.11167831734433
9
Eun JS, Choi JH, Kim JS (2011) Effects of LEDs and tungsten lamp on seedling growth of red pepper (Capsicum annum L.). Korean J Hortic Sci Technol 29:68-68
10
Farina E, Veruggio R (1996) The effects of high-intensity lighting on flower yield of rose 'Dallas'. Acta Hortic 424:35-40. doi:10.17660/ActaHortic.1996.424.4 10.17660/ActaHortic.1996.424.4
11
Faust JE, Heins RD (1997) Quantifying the influence of high-pressure sodium lighting on shoot-tip temperature. Acta Hortic 418:85-91. doi:10.17660/ActaHortic.1997.418.10 10.17660/ActaHortic.1997.418.10
12
Fisher P, Both AJ, Bugbee B (2017) Supplemental lighting technology, costs and efficiency. In R Lopez, ES Runkle (eds.). Light management in controlled environments. Meister Media Worldwide, Willoughby, OH, USA, pp 74-81
13
Franklin KA (2008) Shade avoidance. New Phytol 179930-944. doi:10.1111/j.1469-8137.2008.02507.x 10.1111/j.1469-8137.2008.02507.x18537892
14
Guo X, Hao X, Zheng JM, Little C, Khosla S (2016) Response of greenhouse mini-cucumber to different vertical spectra of LED lighting under overhead high pressure sodium and plasma lighting. Acta Hortic 1134:87-94. doi:10.17660/ActaHortic.2016.1134.12 10.17660/ActaHortic.2016.1134.12
15
Halliday KJ, Koornneef M, Whitelam GG (1994) Phytochrome B and at least one other phytochrome mediate the accelerated flowering response of Arabidopsis thaliannna L. to low red/far-red ratio. Plant Physiol 104:1311-1315 . doi:10.1104/pp.104.4.1311 10.1104/pp.104.4.131112232170PMC159295
16
Hernández R, Kubota C (2017) Light quality and photomorphogenesis. In R Lopez, ES Runkle (eds.). Light management in controlled environments. Meister Media Worldwide, Willoughby, OH, USA, pp 29-37
17
Hogewoning SW, Douwstra P, Trouwborst G, van Ieperen W, Harbinson J (2010) An artificial solar spectrum substantially alters plant development compared with usual climate room irradiance spectra. J Exp Bot 61:1267-1276. doi:10.1093/jxb/erq005 10.1093/jxb/erq00520202994
18
Hogewoning SW, Trouwborst G, Meinen E, van Ieperen W (2012) Finding the optimal growth-light spectrum for greenhouse crops. Acta Hortic 956:357-363. doi:10.17660/ActaHortic.2012.956.41 10.17660/ActaHortic.2012.956.41
19
Jeong KJ, Yun JG, Chon YS, Shin HS, Lee SW (2018) Effect of supplementary or heating lamps on the yield, vase life, and leaf color of cut rose. Prot Hortic Plant Fact 27:158-165. doi:10.12791/KSBEC.2018.27.2.158 10.12791/KSBEC.2018.27.2.158
20
Kang WH, Kim JW, Son JE (2019) Growth and photomorphogenesis of cucumber plants under artificial solar and high pressure sodium lamp with additional far-red light. Prot Hortic Plant Fact 28:86-93. doi:10.12791/KSBEC.2019.28.1.86 10.12791/KSBEC.2019.28.1.86
21
Kim SH, Heo Y, Rhee HC, Kang JS (2013) Effect of LED light quality and supplemental time on the growth and flowering of impatiens. Prot Hortic Plant Fact 3:214-219. doi:10.12791/KSBEC.2013.22.3.214 10.12791/KSBEC.2013.22.3.214
22
Kwon JK, Yu IH, Park KS, Lee JH, Kim JH, Lee JS, Lee DS (2018) Supplemental lighting by HPS and PLS lamps affects growth and yield of cucumber during low radiation period. Prot Hortic Plant Fact 27:400-406. doi:10.12791/KSBEC.2018.27.4.400 10.12791/KSBEC.2018.27.4.400
23
Kwon OH, Kim WH, Lee SY, Lee HJ, Chon KS, Kim WS (2014) Effect of supplemental lighting on temperature and humidity in greenhouse and the growth of cut roses. Flower Res J 22:167-171. doi:10.11623/frj.2014.22.3.12 10.11623/frj.2014.22.3.12
24
Lee JW, Kim HC, Jeong PH, Ku YG, Bae JH (2014) Effects of supplemental lighting of high pressure sodium and lighting emitting plasma on growth and productivity of paprika during low radiation period of winter season. Korean J Hortic Sci Technol 32:346-352. doi:10.7235/hort.2014.14029 10.7235/hort.2014.14029
25
Lee SJ, Kim WS (2015) Shoot growth and flower quality of cut rose 'Pink Bell' as affected by supplemental lighting intensity. Flower Res J 23:131-135. doi:10.11623/frj.2015.23.3.22 10.11623/frj.2015.23.3.22
26
Maas FM, Bakx EJ (1995) Effect of light on growth and flowering of Rosa hybrid 'Mercedes'. J Am Soc Hortic Sci 120:571-576. doi:10.21273/JASHS.120.4.571 10.21273/JASHS.120.4.571
27
Marissen N (2001) Effects of pre-harvest light intensity and temperature on carbohydrate levels and vase life of cut roses. Acta Hortic 543:331-336. doi:10.17660/ActaHortic.2001.543.40 10.17660/ActaHortic.2001.543.40
28
Mortensen LM, Fjeld T (1998) Effects of air humidity, lighting period and lamp type on growth and vase life of roses. Sci Hortic 72:229-237. doi:10.1016/S0304-4238(98)00075-2 10.1016/S0304-4238(98)00075-2
29
Na TS, Kim JG, Choi KJ, Gi GY, Yoo YK (2007) Effect of supplemental lighting on the growth and flowering of Rosa hybrida 'Nobles' in winter. J Bio-Environ Control 16:130-134
30
National Agricultural Products Quality Management Service (NAQS) (2019) Standards for agricultural products. NAQS, Gimcheon, Korea
31
Oh W, Runkle ES (2016) Flowering and morphological responses of petunia and pansy as influenced by lamp type and lighting period to provide long days. Korean J Hortic Sci Technol 34:207-219. doi:10.12972/kjhst.20160021 10.12972/kjhst.20160021
32
Oh W, Runkle ES, Warner RM (2010) Timing and duration of supplemental lighting during the seedling stage influence quality and flowering in petunia and pansy. HortScience 45:1332-1337. doi:10.21273/HORTSCI.45.9.1332 10.21273/HORTSCI.45.9.1332
33
Park IS, Cho KJ, Kim J, Cho JY, Lim TJ, Oh W (2016) Growth and flowering responses of petunia to artificial light resources with different light quality. Korean J Hortic Sci Technol 34:55-66. doi:10.12972/kjhst.20160016 10.12972/kjhst.20160016
34
Park KS, Kim SK, Lee SG, Lee HJ, Kwon JK (2018a) Application of plasma lighting for growth and flowering of tomato plants. Hortic Environ Biotechnol 59:827-833. doi:10.1007/s13580-018-0052-9 10.1007/s13580-018-0052-9
35
Park KS, Kwon DY, Lee JW, Son JE (2018b) Comparing photosynthesis, growth, and yield of paprika (Capsicum annuum L. 'Cupra') under supplemental sulfur plasma and high-pressure sodium lamps in growth chambers and greenhouses. Prot Hortic Plant Fact 27:332-340. doi:10.12791/KSBEC.2018.27.4.332 10.12791/KSBEC.2018.27.4.332
36
Park Y, Runkle ES (2017) Far-red radiation promotes growth of seedlings by increasing leaf expansion and whole-plant net assimilation. Environ Exp Bot 136:41-49. doi:10.1016/j.envexpbot.2016.12.013 10.1016/j.envexpbot.2016.12.013
37
Roberts GL, Tsujita MJ, Dansereaul B (1993) Supplemental light quality affects budbreak, yield, and vase life of cut roses. HortScience 28:621-622. doi:10.21273/HORTSCI.28.6.621 10.21273/HORTSCI.28.6.621
38
Runkle ES, Padhye SR, Oh W, Getter K (2012) Replacing incandescent lamps with compact fluorescent lamps may delay flowering. Sci Hortic 143:56-61. doi:10.1016/j.scienta.2012.05.028 10.1016/j.scienta.2012.05.028
39
Rural Development Administration (RDA) (2018) A manual of environmental management for smart greenhouses. RDA, Jeonju, Korea
40
Shi L, Kim WS (2014) Shoot growth and physiological disorder of cut rose 'Charming Black' as affected by drought stress during nocturnal supplemental lighting. Hortic Environ Biotechnol 55:91-96. doi:10.1007/s13580-014-0166-7 10.1007/s13580-014-0166-7
41
Shimizu H, Ma Z, Tazawa S, Douzono M, Runkle ES, Heins RD (2005) Blue light inhibits stem elongation of chrysanthemum. Acta Hortic 711:363-368. doi:10.17660/ActaHortic.2006.711.50 10.17660/ActaHortic.2006.711.50
42
Smith H (1982) Light quality, photoperception, and plant strategy. Annu Rev Plant Physiol 33:481-518. doi:10.1146/annurev.pp.33.060182.002405 10.1146/annurev.pp.33.060182.002405
43
Smith H, Whitelam GC (1997) The shade avoidance syndrome: multiple responses mediated by multiple phytochromes. Plant Cell Environ 20:840-844. doi:10.1046/j.1365-3040.1997.d01-104.x 10.1046/j.1365-3040.1997.d01-104.x
44
Warpeha KM, Kaufman LS (1989) Blue-light regulation of epicotyl elongation in Pisum sativum. Plant Physiol 89:544-548. doi:10.1104/pp.89.2.544 10.1104/pp.89.2.54416666580PMC1055879
45
Wheeler RM, Mackowiak CL, Sager JC (1991) Soybean stem growth under high‐pressure sodium with supplemental blue lighting. Agron J 83:903-906. doi:10.2134/agronj1991.00021962008300050024x 10.2134/agronj1991.00021962008300050024x11537676
Information
  • Publisher :KOREAN SOCIETY FOR HORTICULTURAL SCIENCE
  • Publisher(Ko) :원예과학기술지
  • Journal Title :Horticultural Science and Technology
  • Journal Title(Ko) :원예과학기술지
  • Volume : 39
  • No :1
  • Pages :49-61
  • Received Date : 2020-10-06
  • Revised Date : 2020-10-16
  • Accepted Date : 2020-10-22