請用此 Handle URI 來引用此文件:
http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/31443完整後設資料紀錄
| DC 欄位 | 值 | 語言 |
|---|---|---|
| dc.contributor.advisor | 張龍生(Loong-Sheng Chang) | |
| dc.contributor.author | Chai-Hsia Gan | en |
| dc.contributor.author | 顏綵葭 | zh_TW |
| dc.date.accessioned | 2021-06-13T03:13:05Z | - |
| dc.date.available | 2011-08-30 | |
| dc.date.copyright | 2006-08-30 | |
| dc.date.issued | 2006 | |
| dc.date.submitted | 2006-08-29 | |
| dc.identifier.citation | 1. 王德男. 1971. 木瓜果實成熟度及其後熟作用對於種子發芽之影響. 中國園藝 17:320-322.
2. 台灣農產品外銷網(http://trade.coa.gov.tw:8080/ index_c.jsp). 3. 邱展台、廖公益、柯天雄、戴壅發. 1997. 木瓜不同採收成熟度與種子貯藏時期影響種子品質及產量之研究. 提升果樹產業競爭力研討會專集III. 台灣省農林廳及行政院農業委員會編印. P.39- 44. 4. 周玉珍. 1987. 木瓜種子休眠機制之探討. 國立中興大學植物學研究所碩士論文. 5. 林美華. 1998. 木瓜種子活度測驗與儲藏行為再檢討. 國立臺灣大學農藝學研究所碩士論文. 6. 施佳宏. 1995. 木瓜種子休眠貯藏及活力測定法之探討. 國立臺灣大學農藝學研究所碩士論文. 7. 施佳宏、郭華仁. 2004. 番木瓜果實成熟度與種子發芽能力. 植物種苗 6:43-53. 8. 陳威臣. 1994. 木瓜種子微細構造及發芽試驗法之探討.國立臺灣大學農藝學研究所碩士論文. 9. 郭華仁. 1988. 木瓜種子的休眠、貯藏壽命與活力檢驗. 園藝種苗產銷技術研討會專刊. (林俊義、陳培昌主編).種苗改良繁殖場. 台中市. P.31-40. 10. 高愛菱. 2000. 木瓜種子發芽取現模式與發芽行為之檢討. 國立臺灣大學農藝學研究所碩士論文. 11. 曾美倉. 1991. GA濃度及處理時間對木瓜種子發芽促進之影響. 國立臺灣大學農學院研究報告 31:31-39 12. 曾美倉. 1992a. 溫度對木瓜種子發芽之影響. 中華農學會報 158: 29-45. 13. 曾美倉. 1992b. 去除假種皮、GA處理及乾燥法對木瓜種子發芽之影響. 中華農學會報 158: 46-54. 14. 曾美倉、黃懿泰. 1991. 種子預措對木瓜種子發芽之影響. 中華農學會報 156: 1-6. 15. 謝明憲. 1997. 溫度及全互交分析木瓜兩性株性型表現. 國立臺灣大學園藝學研究所碩士論文. 16. Andreoli C. and A. A. Khan. 1993. Improving papaya seedling emergence by matriconditioning and gibberellin treatment. HortScience. 28:708-709. 17. Araki S., S. Shiozawa and I. Washitani. 1998. An experimental device for studying seed responses to naturally fluctuating temperature of surface soil under a constant water table. Func. Ecol. 12:492-499. 18. Arnold R. L. B., C. M. Ghersa, R. A. Sanchez and A. E. Garcia Fernandez. 1988. The role of fluctuating temperatures in the germination and establishment of Sorghum halepense (L.) Pers. Regulation of germination under leaf canopies. Func. Ecol. 2: 311-318. 19. Baskin C. C. and J. M. Baskin. 1998. Seeds: ecology, biogeography and evolution of dormancy and germination. Academic Pres, California. pp 621. 20. Baskin J. M. and C. C.Baskin. 1983. Seasonal change in the germination responses of buried seed of Arabidopsis thaliana and ecological interpretation. Bot. Gaz. 144:540-543. 21. Bass L. N. 1975. Seed storage of Carica papaya L. HortScience. 10: 232. 22. Benvenuti S., M. Macchia and S. Miele. 2001. Light, temperature and burial depth effects on Rumex obtusifolius seed germination and emergence. Weed research 41: 177-186. 23. Bewley, J. D. 1997. Seed germination and dormancy. The Plant Cell 9:1055-1066. 24. Bewley, J. D. and M. Black. 1994. Seeds: Physiology of Development and Germination. Second ed., Plenum Press, New York/ London. 25. Bhattacharya J. and S. S. Khuspe. 2001. In vitro and in vivo germination of papaya (Carica papaya L.) seeds. Sci. Horti. 91:39-49. 26. Black M. 1996. Liberating the radicle: A case for softening up. Seed Sci. Res. 6:39-42. 27. Bradford K. J. 1986. Manipulation of seed water relation via osmotic priming to improve germination under stress conditions. HortScience 21: 1105-1112. 28. Bradford K. J. 1996. Population-based models describing seed dormancy behavior: Implication for Experimental design and interpretation. In: Plant dormancy: physiology, biochemistry and molecular biology. Edited by G. A. Lang. pp.313-339. CAB international, Wallington. 29. Bradford K. J., A. B. Downie, O. H. Gee, V. Alvarador, H. Yang and P. Dahal. 2003. Abscisic acid and gibberilin differentially regulate expression of genes of the SNF1-related kinase complex in tomato seeds. Plant Physiol. 132:1560-1576. 30. Bradford K. J., F. Chen, M. B. Cooley, P. Dahal, B. Downie, K. K. Fukunaga, O. H. Gee, S. Gurusinghe, R. A. Mella, H. Nonogaki, G. T. Wu, H. Yang and K. O. Yim. 2001. Gene expression prior to radicle emergence in imbibed tomato seeds. In: Seed biology: Advances and applications (K. J. Bradford eds.). p.231-251. CABI Press, New York. 31. Brown R. F. and D. G. Mayer. 1988. Representing Cumulative Germination: The use of the Weibull Function and other empirically derived curves. Ann. Bot. 61: 127-138. 32. Chacko E. K. and R. N. Singh. 1966. The effect of gibberellins acids on the germination of papaya seeds and subsequent seedling growth. Trop. Arg. Trin. 43:341- 346. 33. Chen U. C. and M. T. Tseng. 1996. Change in morphology and moisture content of Papaya (Carica papaya L.) seeds during germination. J. Agric. Assoc. China 176: 112-121. 34. Chow, Y. J. and C. H. Lin. 1991. p-Hydroxybenzoic acid as the major phenolic germination inhibitor of papaya seed. Seed Sci. Technol. 19: 167-174. 35. Cohen D. 1958. The mechanism of germination stimulation by alternating temperatures. Bull. Res. Counc. Israel Sect. D 6D, 111-117. 36. Coumans M., D. Come and T. Gaspal. 1976. Stabilized dormancy in sugar beet fruits.I. Seed coats as a physicochemical barrier to oxygen. Bot. Gaz. 137:274- 278. 37. Danielson H. R. and V. K. Toole. 1976. Action of temperature and light on the control of seed germination in Alta tall fescue (Festuca arundinaceae Schreb.). Crop Sci. 16: 317-320. 38. Doussi M. A. and C. A. Thanos. 2002. Ecophysiology of seed germination in Mediterranean geophytes. 1. Muscari spp. Seed Sci. Res. 12:193-201. 39. Eagles C. F. and J. Williams. 1992. Hardening and deharding of Lolium perenne in response to fluctuating temperatures. Ann. Bot. 70: 333-338. 40. Ellery A. J. 2002. Embryo dormancy responses to temperature in capeweed (Arctotheca calendula) seeds. Seed Sci. Res. 12: 181-191. 41. Ellis R.H., T. D. Hong and E. H. Roberts. 1982. An investigation of the influence of constant and alternating temperature on the germination of cassava seed using a two-dimensional temperature gradient plate. Ann. Bot. 49:241-246. 42. Ellis R.H., T. D. Hong and E. H. Roberts. 1985. Caricaceae. In: Handbook of Seed Technology for Genebanks. Vol.II. Compendium of Specific Germination Information and Test Recommendations. International Board for Plant Genetic Resources publications. Rome. 43. Evanari M. 1949. Germination inhibitor. Bot. Rev. 15:153-194. 44. Fandrich L. and C. M. Smith. 2005. Temperature effects on jointed goatgrass (Aegilops rabica cal) seed germination. Weed Sci. 53: 594–599. 45. Fenner M. 1985. Germination. In: Seed Ecology. Chapman & Hall. New York. Pp.88-94. 46. Furutani S. C. and M. A. Nagao. 1987. Influence of temperature, KNO3, GA3 and seed drying on emergence of papaya seedlings. Hort. Sci. 32: 67-72. 47. Gherardi E. and I. F. M. Valio. 1976. Occurrence of promoting and inhibitory substances in the seed arils of Carica papaya L.. J. Hort. Sci. 51:1-14. 48. Ghersa C. M., R. L. Benech Arnold and M. A. Martinez-Ghersa. 1992. The role of fluctuating temperatures in germination and establishment of Sorghum halepense. Regulation of germination at increasing depths. Func. Ecol. 6:460-468. 49. Goedert C. O. and E. H. Roberts. 1986. Characterization of alternating- temperature regimes that removed seed dormancy in seeds of Brachiaria humidicola (Rendle) Schweickerdt. Plant Cell Env. 9:521-525. 50. Hagon M. W. and L. A. T. Ballard. 1970. Reversibility of strophilar impermeability to water in seeds of subterranean clover (Trifolium subterraneum L.). Aust. J. Biol. Sci. 23:519-528. 51. Hardegree S. P. and S. S. Van Vactor. 1999. Predicting germination response of four cool-season range grasses to field-variable temperature regimes. Environ. Exp.Bot. 41:209-217. 52. Hegarty T. W. 1975. Effects of fluctuating temperature on germination and emergence of seeds in different moisture environments. J. Exp. Bot. 26:203-211. 53. Hendricks S. B. and R. B. Taylorson. 1976. Variation in Germination and Amino Acid Leakage of Seeds with Temperature Related to Membrane Phase Change. Plant Physiol. 58: 7–11. 54. Hendricks S. B. and R. B. Taylorson. 1979. Dependence of thermal responses of seeds on membrane transitions. Proc. Natl. Acad. Sci. 76: 778-781. 55. http://www.cwb.gov.tw/. Central weather bureau. Taiwan. 56. http://www.fao.org/index_en.htm 57. Hung L. Q., T. D. Hong and R. H. Ellis. 2001. Constant, fluctuating and effective temperature and seed longevity: a tomato (Lycopersicon esculentum Mill.) exemplar. Ann. Bot. 88:465-470. 58. Hyde E. O. C. 1954. The function of the hilum in some Papilionaceace in relation to the ripening of the seed and the permeability of the testa. Ann Bot. 18: 241-256. 59. Hyde E. O. C., A. M. McLeavy and G. S. Harris. 1959. Seed development in ryegrass, and in red and white clover. N. Z. J. Agric. Res. 2:947-952. 60. International Seed Testing Association. 1993. International rules for seed testing. I. S. T. A., Zurich, Switzerland. 61. Kao A. L. 2000. Investigation of papaya germination curve model and germination performance. Master thesis of Graduate Institute of Agronomy. 38pp. National Taiwan University. 62. Kebreab E. and A. J. Murdoch. 1999. A model of the effect of a wide range of constant and alternating temperatures on seed germination of four Orobanche species. Ann. Bot. 84:549-557. 63. Khan, A. A.(ed.). 1982. The physiology and biochemistry of seed development, dormancy, and germination. Elsevier Biomedical Press, New York.pp.461. 64. Koller D. and A. Hadas. 1985. Water relation in the germination of seeds. In: Encyclopedia of plant physiology new ser. V.12B. edited by . p402-430 65. Koornneef M., L. Bentsink and H. Hilhorst. 2002. Seed dormancy and germination. Curr. Opinion in Plant Biology 5:33-36. 66. Lodge G. M., R. D. Murison and E. W. Heap. 1990. The effect of temperature on the hardseed content of some annual legumes grown on the northern slopes of New South Wales. Aust. J. Agri. Res. 41: 941 – 955. 67. Lang A. 1965. Effects of some internal and external conditions on seed germination. In: Encyclopedia of plant physiology vol. 15(2). Edited by W. Ruhland, pp.848-893. 68. Lange A. H. 1961. Effect of the sarcotesta on germination of Carica papaya. Bot. Gaz. 122: 305-311. 69. Leubner M. G. 2003. Functions and regulation of β-1,3-glucanases during seed germination, dormancy release and after-ripening. Seed Sci. Res. 13: 17-34. 70. Martins G. N., R. F. da Silva, E. F. Araújo, M. G. Pereira, H. D. Vieira and A. P. Viana. 2005. Influence of fruit type, specific seed weight and storage on the physiological quality of papaya seeds of the rabica group. Rev. Bras. Sementes 27: 12-17. 71. Milberg P. 1997. Weed seed germination after short-term light exposure: germination rate, photon fluence response and interaction with nitrate. Weed Res. 37 (3), 157-164. 72. Murdoch A. J., E. H. Roberts and C. O. Goedert. 1989. A model for germination responses to alternating temperatures. Ann. Bot. 63:97-111. 73. Naredo M. E. B., A. B. Juliano, B. R. Lu, F. de Guzman and M. T. Jackson. 1998. Responses to seed dormancy-breaking treatments in rice species (Oryza L.). Seed Sci. & Technol. 26: 675-689. 74. Neveur N., F. Corbineau and D. Côme. 1986. Some characteristics of Cyclamen persicum L. seed germination. J. Hort. Sci. 61:379-387. 75. Ni B. R. and K. J. Bradford. 1993. Germination and dormancy of abscisic acid and gibberellin-deficient mutant tomato (Lycopersicon esculentum) seeds- Sensitivity of germination to abscisic acid, gibberellin and water potential. Plant Physiol. 101:607- 617. 76. Pinfield N. J. and P. A. Stutchbury. 1990. Seed dormancy in Acer: the role of testa-imposed and embryo dormancy in Acer velutinum. Ann. Bot. 66:133-137. 77. Probert R. J. 1992. The role of temperature in germination ecophysiology. In: Seeds-the Ecology of Regeneration in Plant Communities. Edited by M.Fenner, pp.285-326. CAB International. Wallingford. 78. Probert R. J., K. H. Gajjar and I. K. Haslam. 1987. The interactive effects of phytochrome, nitrate and thiourea on the germination response to alternating temperatures in seeds of Rananculus scleratus L. A quantal approach. J. Exp. Bot. 38:1012-1025. 79. Probert R. J., R. D. Smith and P. Birch. 1986. Germination responses to light and alternating temperatures in European populations of Dactylis Glomerata L. V. The principle components of the alternating temperature requirement. New Phytol. 102: 133-142. 80. Quinlivan B. J. 1961. The relationship between temperature fluctuations and the softening of hard seeds of some legume species. Aust. J. Agri. Res. 17: 625 – 631. 81. Roundy B. A. and S. H. Biedenbender. 1996. Germination of warm-season grasses under constant and dynamic temperatures. J. Range Manage. 49: 415-431. 82. Sao Jose A. R. and R. J. P. Cunha. 1988. Influence of seed position in the fruit cavity on germination percentage, sex expression and seedling vigour of Carica papaya L. Ecology Abstr. 16: 61 83. Silva P. D., E. Toorop, J. Nijsse, J. D. Bewley and H. W. M. Hilhorst. 2005. Exogenous gibberellins inhibit coffee (Coffea rabica cv. Rubi) seed germination and cause cell death in the embryo. J. Exp. Bot. 56: 1029. 84. Still D. W. and K. J. Bradford. 1997. Endo-β-mannanase activity from individual tomato endosperm caps and radicle tips in relation to germination rates. Plant Physiol. 113:21-29. 85. Still D. W., P. Dahal and K. J. Bradford. 1997. A single-seed assay for endo-β- mannanase activity from tomato endosperm and radicle tissues. Plant Physiol. 113: 13-20. 86. Taylor G. B. 1981. Effect of constant temperature treatments followed by fluctuating temperatures on the softening of hard seeds of Trifolium subterraneum L.. Aust. J. Plant Physiol. 8: 547-558. 87. Taylorson R. B. and S. B. Hendricks. 1972. Interactions of light and a temperature shift on seed germination. Plant Physiol. 49: 127-130. 88. Thompson K. and J. P. Grime. 1983. A comparative study of germination responses to diurnally fluctuating temperatures. J. Appl. Ecol. 20: 141-156. 89. Thomson P. A. 1974a. Germination of celery (Apium graveolens L.) in response to fluctuating temperature. J. Exp. Bot. 25:156-163. 90. Thomson P. A. 1974b. Effects of fluctuating temperatures on germination. J. Exp. Bot. 25:164-175. 91. Toole E. H., V. K. Toole, H. A. Borthwick and S. B. Hendricks. 1955. Interaction of temperature and light in germination of seeds. Plant Physiol. 30:473-478 92. Toole V. K. 1976. Light and temperature control of germination in Agropyron smithii seeds. Plant & Cell Physiol. 17:1263-1272. 93. Toole V. K. and H. A. Borthwick. 1971. Effect of light, temperature and their interactions on germination of seeds of Kentucky bluegrass (Poa pratensis L.). J. Amer. Soc. Hort. Sci. 96:301-304. 94. Ueno K. and K. Miyoshi. 2005. Difference of optimum germination temperature of seeds of intact and dehusked japonica rice during seed development. Euphytica 143:271-275. 95. VanDer Woude W. J. 1985. A dimeric mechanism for the action of phytochrome: evidence from photothermal interactions in lettuce seed germination. Photochem. Photobiol. 42: 655-661. 96. Vegis. A. 1963. Clmatic control of germination, bud break and dormancy. In: Environmental control of plant growth. Edited by L. T. Evans. P.265-287. Academic press, New York. 97. Vegis. A. 1964. Dormancy in higher plants. Ann. Rev. Plant Physiol. 15: 185- 224. 98. Vegis A. 1973. Dependence of the growth process on temperature. In: Temperature and life. Edited by H. Precht, J. Christophersen, H. Hensel and W. Larcher. P.145-170. Springer-Verlag, New York. 99. Vila-Aiub M. M., P. Neve, K. J. Steadman and S. B. Powles. 2005. Ecological fitness of a multiple herbicide-resistant Lolium rigidum population: dynamics of seed germination and seedling emergence of resistant and susceptible phenotypes. J. Appl. Ecology 42: 288-298. 100. Vleeshouwers L. M. and H. J. Bouwmeester. 2001. A simulation model for seasonal changes in dormancy and germination of weed seeds. Seed Sci. Res.11:77- 92. 101. Weaver L. C. and G. L. Jordan. 1985. Effects of selected seed treatment on germination rates of five range plants. J. Range Manage. 38: 415-418. 102. Welbaum G. E. and K. J. Bradford. 1990a. Water relations of seed development and germination in muskmelon(Cucumis melo L.) IV. Characteristics of the perisperm during seed development. Plant Physiol. 92:1038-1045. 103. Welbaum G. E. and K. J. Bradford. 1990b. Water relations of seed development and germination in muskmelon(Cucumis melo L.)V. Water relation of imbibition and germination. Plant Physiol. 92:1046-1052. 104. Welbaum G. E., K. J. Bradford, K. O. Yim, D. T. Booth and M. O. Oluoch. 1998. Biophysical, physiological and biochemical processes regulating seed germination. Seed Sci. Res. 8:161-172. 105. Wood C. B., H. W. Pritchard and D. Amritphale. 2000. Desiccation-induced dormancy in papaya(Carica papaya) seeds is alleviated by heat shock. Seed Sci. Res. 10:135-145. 106. Yahiro M. 1979. Effects of seed-pretreatments on the promotion of germination in papaya, Carica papaya L.. Mem. Fac. Agric. Kagoshima Univ. 15: 49-54 . 107. Yahiro M. and Y. Oryoji. 1980. effect of gibberellin and cytokinin Treatments on the promotion of germination in papaya, Carica papaya L., seeds. Mem. Fac. Agric. Kagoshima Univ. 16:45-51. 108. Young J. A., R. A. Evan and B. L. Kay. 1975. Dispersal and germination dynamics of broadleaf filaree, Erodium botrys (Cav.) Bertol. Agron. J. 67:54-57. 109. Zheng Y. R., Z. X. Xie, Y. Gao, L. H. Jiang, X. R. Xing, H. Shimizu and G. M. Rimmington. 2005. Effects of light, temperature and water stress on germination of Artemisia sphaerocephala. Ann. Appl. Biol. 146:327-335. 110. Zia S. and M. A. Khan. 2004. Effect of light, salinity and temperature on seed germination of Limonium stocksii. Can. J. Bot. 82:151-157. | |
| dc.identifier.uri | http://tdr.lib.ntu.edu.tw/jspui/handle/123456789/31443 | - |
| dc.description.abstract | 針對番木瓜(Carica papaya)種子發芽不整齊及發芽率低的問題,以`台農二號'番木瓜種子為材料,檢測種子內生因子如:種皮、種子水分吸收、種子大小比重、果實成熟度及發芽環境如:溫度、光照處理對種子發芽之影響。實驗結果顯示番木瓜種子內種皮及外種皮之存在顯著影響種子之萌芽及發芽速率,剝除內外種皮(僅含胚乳含胚)之發芽實驗發現此處理之種子有高比例的不正常膨大及胚根突出但不伸長之現象,推測番木瓜種子之內種皮可能與種子的保護機制或發芽機制有關係。番木瓜種子萌芽取決於胚及胚乳的水分吸收。內外種皮裂開之種子胚含胚乳水分含量比內外種皮沒裂開之種子水分含量差別不大,胚僅需達到少量的水分即足以萌發,顯示番木瓜種子水分之吸收受到胚乳之限制多於受到種皮之限制,進而推論種皮影響番木瓜種子胚根萌發之作用在於機械障礙而不是水分的限制。果實成熟度對種子發芽具有顯著影響,果實成熟度越高,發芽率及發芽速率越高,植株著果15週之種子已達種子最大成熟度。種子大小對發芽影響不顯著;但種子比重則顯著影響發芽率。在12小時光照環境下高溫35℃恆溫下發芽種子發芽率極低,變溫處理則可促進種子發芽。恆溫35、30及25℃與變溫35/30、35/25、35/20、30/25及30/20℃(8h/16h)之發芽率比較顯示變溫處理比恆溫處理發芽要佳。從原本恆溫處理移溫到變溫處理可顯著促進發芽。連續照光24小時會抑制發芽,在30℃恆溫下光照8小時或12小時與黑暗處理沒有顯著差異。複因子試驗比較4種溫度處理(室外、模擬夏天田間溫度變動、變溫及恆溫)、有無12小時光照與有無GA3 400mg/L浸潤3小時預措處理,溫度、光照與GA3處理之交感作用對番木瓜種子發芽沒有顯著影響,溫度主效應對發芽有顯著影響。 | zh_TW |
| dc.description.abstract | A few seed germination internal factors such as influence of testa and tegmen, moisture content after imbibitions, maturation of fruits and seed size and weight and external environment such as influences of alternating temperature and light were investigate to sought for problem of papaya germination. The testa and tegmen presented markedly delay in germination as a physical resistance to radicle emergence. Tegmen might play a role in seed protection and germination because removal tegmen might cause abnormal seed. Moisture content of dried intact seeds and seedcoat(including testa and tegmen) increase linearly after imbibitions, and reach a plateau in short time. While moisture content of endosperm include embryo were lower but shown water absorption 3 phase. So, the moisture content of endosperm include embryo was the critical point to papaya germination and endosperm play a role in blocking water absorption. Fruit maturation was significant effect in papaya seed germination and germination rate. Seed size of papaya might not significantly effect on germination, while the heavier seed weight were showed better germination. Papaya germinated at alternating temperature 35/25℃ and 35/20℃(12h/12h) were higher than constant 35℃in 12 h photoperiod. Compared the germination of papaya at constant temperature 35℃, 30℃ and 25℃ and alternating temperatures of 35/30℃, 35/25℃, 35/20℃, 30/25℃ and 30/20℃ in darkness, alternating temperature regimes provided higher germination than constant temperatures. Germination percentage at constant temperatures 35℃ and 25℃ was able to increase progressively after transferring to alternating temperature. Continuous 24h light treatment inhibited papaya germination. Germination percentage was not significant difference between darkness or photoperiod 8h and 12h at 30℃ constant temperature. A factorial experiment of temperature regimes (outdoor temperature, fluctuating temperature, alternating temperature and constant temperature); light treatments (with 12 hours light or darkness) and GA3 treatments (with or without pretreated GA3 400mg/L 3 hours). The interaction between temperature, light and gibberellins treatment did not show significant effect on papaya germination, but the temperature had the significant effect on papaya germination. | en |
| dc.description.provenance | Made available in DSpace on 2021-06-13T03:13:05Z (GMT). No. of bitstreams: 1 ntu-95-R91628113-1.pdf: 678194 bytes, checksum: 73af9c981d81aaf2d74ab4bd14c5567d (MD5) Previous issue date: 2006 | en |
| dc.description.tableofcontents | 圖表目次……………………………… …………………… iii
諸言…………………………………… …………………… iv 參考文獻……………………………………………………… vi 第一章 番木瓜種子內生因子對其發芽之影響 中文摘要…………………………………………… 2 前言……………………………………………………… 3 前人研究 4 材料與方法……………………………………………… 11 結果…………………………………………………… 13 討論………………………… ………………………… 18 參考文獻………………………………………………… 23 圖表 26 英文摘要………………………………………………… 30 第二章 溫度與光照處理對番木瓜種子發芽之影響 英文摘要……………………… ……………… 34 前言…………………… ………………………… 35 前人研究 37 材料與方法………………… ………………………… 44 結果…………………………………………………… 48 討論……………………………………………………… 53 參考文獻………………… …………………………… 60 圖表 66 中文摘要………………… …………………………… 74 總結 中文摘要…………………………………………………… 76 英文摘要…………………… ………………………… 77 | |
| dc.language.iso | zh-TW | |
| dc.subject | 果實成熟度 | zh_TW |
| dc.subject | 光照 | zh_TW |
| dc.subject | 變溫 | zh_TW |
| dc.subject | 種皮 | zh_TW |
| dc.subject | 種子比重 | zh_TW |
| dc.subject | 發芽 | zh_TW |
| dc.subject | 番木瓜 | zh_TW |
| dc.subject | 種子大小 | zh_TW |
| dc.subject | .alternating temperature | en |
| dc.subject | Carica papaya L. | en |
| dc.subject | tegmen | en |
| dc.subject | moisture content | en |
| dc.subject | seed size | en |
| dc.subject | seed weight | en |
| dc.subject | fruit maturation | en |
| dc.subject | light | en |
| dc.subject | testa | en |
| dc.subject | germination | en |
| dc.title | 番木瓜種子發芽之影響因子 | zh_TW |
| dc.title | Factors Influence on Germination of Carica papaya Seeds | en |
| dc.type | Thesis | |
| dc.date.schoolyear | 94-2 | |
| dc.description.degree | 碩士 | |
| dc.contributor.oralexamcommittee | 林宗賢(Tzong-Shyan Lin),楊耀祥(Yau-Shiang Yang) | |
| dc.subject.keyword | 發芽,番木瓜,種皮,種子大小,種子比重,果實成熟度,變溫,光照, | zh_TW |
| dc.subject.keyword | germination,Carica papaya L.,testa,tegmen,moisture content,seed size,seed weight,fruit maturation,.alternating temperature,light, | en |
| dc.relation.page | 78 | |
| dc.rights.note | 有償授權 | |
| dc.date.accepted | 2006-08-30 | |
| dc.contributor.author-college | 生物資源暨農學院 | zh_TW |
| dc.contributor.author-dept | 園藝學研究所 | zh_TW |
| 顯示於系所單位: | 園藝暨景觀學系 | |
文件中的檔案:
| 檔案 | 大小 | 格式 | |
|---|---|---|---|
| ntu-95-1.pdf 未授權公開取用 | 662.3 kB | Adobe PDF |
系統中的文件,除了特別指名其著作權條款之外,均受到著作權保護,並且保留所有的權利。
