[1] IPCC. Climate change 2007:the physical science basis[R]. Cambridge,UK:Cambridge University Press,2007
[2] Norby R J, Wullschleger S D, Gunderson C A, et al. Tree responses to rising CO2 in field experiments:implications for the future forest[J]. Plant, Cell & Environment,1999,22(6):683-714
[3] 林金星,胡玉熹. 大豆叶片对CO2浓度升高的反应[J]. 植物学报,1996,38(1):31-34
[4] 郝兴宇,韩雪,李萍,等. 大气CO2浓度升高对绿豆叶片光合作用及叶绿素荧光参数的影响[J]. 应用生态学报,2011,22(10):2776-2780
[5] 石贵玉,康浩,梁士楚,等. 大米草对CO2浓度的光合和蒸腾响应[J]. 广西科学,2009,16(3):322-325
[6] Mauney J R, Guinn G, Fry K E, et al. Correlation of Photosynthetic carbon dioxide uptake and carbonhydrates accumulation in cotton, soybean, sunflower and sorghum[J]. Photosythetica,1979(13):260-266
[7] 毕玉伟,秦俊,胡永红,等. CO2摩尔分数增高对盆栽香樟光合特性及生长量的影响[J]. 东北林业大学学报,2011,39(5):27-43
[8] 毕玉伟,秦俊,刘庆华,等. CO2浓度增高对盆栽牡丹品种‘凤丹白’生长及光合特性的影响[J]. 西南林业大学学报,2011,31(2):9-15
[9] Zou D H, Gao K S, Luo H J. Short-and long-term effects of elevated CO2 on photosynthesis and respiration in the marine macroalga Hizikia fusiformis (Sargassaceae,Phaeophyta) grown at low and high N supplies[J].Journal of Phycology,2011,47(1):87-97
[10] Gao K S, Aruga Y, Asada K, et al. Enhanced growth of the red algae Porphyra yezoensis Ueda in high CO2concentrations[J]. Journal of Applied Phycology,1991,3(4):355-362
[11] 苏培玺,张立新,杜明武,等. 胡杨不同叶形光合特性、水分利用效率及其对加富CO2的响应[J]. 植物生态学报,2003,27(1):34-40
[12] 李永华,王献,孔德政,等. 长期CO2加富对苗期红掌(Anthurium andraeanum L.)植株生长和光合作用的影响[J]. 生态学报,2007,27(5):1852-1857
[13] 郑凤英,彭少麟. 植物生理生态指标对大气CO2浓度倍增响应的整合分析[J]. 植物学报,2001,43(11):1101-1109
[14] Beerling D J, Wood Ward F I. Leaf stable carbon isotope composition records increased water-use efficiency of C3 plants in response to atmospheric CO2 enrichment.[J]. Functional Ecology,1995,9:394-401
[15] Bowes G. Facing the inevitable:plants and increasing atmospheric CO2[J]. Annual Review of Plant Physiology and Plant Molecular Biology,1993,44:309-332
[16] Kimball B, Kobayashi K, Bindi M. Responses of agricultural crops to free air CO2 enrichment[J]. Advances in Agronomy, 2002,77:293-368
[17] Kimball B A, Carbon dioxide and agricultural yield:An assemblage and analysis of 430 prior observations[J]. Agron J,1983,75:779-788
[18] 潘瑞炽. 植物生理学[M]. 北京:高等教育出版社,2001:97
[19] 李光耀,张力君,孙启忠,等. 苜蓿不同生育期营养特性的对比分析研究[J]. 粮食与饲料工业,2014,5(1):44-50
[20] Stéphanie R, Nicolas L, Jean J, et al. Interacting effects of CO2 partial pressure and temperature on photosynthesis and calcification in a scleractinian coral[J]. Global Change Biology,2003,9(11):1660-1668
[21] 张彤,王磊,杨俊兴. CO2倍增对干旱胁迫下大豆光合效应的影响[J]. 河南农业科学,2005(8):47-50
[22] 赵天宏,史奕,王春乙,等. CO2和O3浓度倍增及其复合作用对大豆叶绿素含量的影响[J]. 生态学杂志,2003,22(6):117-120
[23] Brown H T, Escombe F. The influence of varying amounts of carbon dioxide in the air on the photosynthetic process of leaves and on the mode of growth of plants[J]. Proceedings of the Royal Society of London,1902,70(459-466):397-413
[24] Cave G, Tolley L C, Strain B R. Effect of carbon dioxide enrichment on chlorophyll content, starch content and starch grain structure in Trifolium subterraneum leaves[J]. Physiologia Plantarum,1981,51(2):171-174
[25] 左宝玉,姜桂珍,白克智,等. CO2浓度倍增对谷子和紫花苜蓿叶绿体超微结构的效应[J]. 植物学报,1996,38(1):72-76
[26] Kilno M, Lei T T, Koike T, et al.. Susceptibility to photo inhibition of three species with different success ional traits raised under various light regimes[J]. Plant Cell Environment,2000,23:81-89
[27] 李超,王育青,高丽,等. 九个苜蓿品种叶绿素荧光参数与叶片水势日变化研究[J]. 中国草地学报,2012,34(2):23-29
[28] 张其德,卢从明,张群,等. 不同氮素水平下CO2倍增对大豆叶片荧光诱导动力学参数的影响[J]. 植物营养与肥料学报,1997,3(1):24-29
[29] 张其德,卢从明,冯丽洁,等. CO2加富对紫花苜蓿光合作用原初光能转换的影响[J]. 植物学报,1996,38(1):77-82
[30] 樊良新,刘国彬,薛萐,等. CO2浓度倍增及干旱胁迫对紫花苜蓿光合生理特性的协同影响[J]. 草地学报,2014,22(1):85-93
[31] 张其德,温小刚,卢从明,等. 盐胁迫下CO2加倍对春小麦一些光合功能的影响[J]. 植物生态学报,2000,24(3):308-311
[32] Tegelberg R, Julkunen-Tiitto R, Vartiainen M, et al. Exposures to elevated CO2 elevated temperature and enhanced UV-B radiation modify activities of Polyphenol oxidase and Guaiacol peroxidase and concentrations of chlorophylls, polyamines and soluble proteins in the leaves of Betula pendula seedlings[J]. Environmental and experimental botany,2008,62(3):308-315
[33] 张其德,卢从明,刘丽娜,等. CO2浓度倍增对垂柳和杜仲叶绿体吸收光能和激发能分配的影响[J]. 植物学报,1997,39(9):845-848
[34] 陶宗娅,邹琦. 强光和短期高浓度CO2对玉米和大豆光能转化效率的影响[J]. 西北植物学报,2005,25(2):244-249
[35] 毛子军,赵溪竹,刘林馨,等.3种落叶松幼苗对CO2升高的光合生理响应[J]. 生态学报,2010,30(2):317-323
[36] 赵天宏,史奕,黄国宏. CO2和O3浓度倍增及其交互作用对大豆叶绿体超微结构的影响[J]. 应用生态学报,2003,14(12):2229-2232
[37] Susana E, Rocio A, Federico J, et al. On the response of pigments and antioxidants of Pinus halepensis seedlings to Mediterranean climatic factors and long-term ozone exposure[J]. New Phytologist,1998,138(3):419-432
[38] 周青,黄晓华,戴玉锦. CO2倍增对植物的生态生理效应[J]. 自然杂志,2002,24(1):20-25
[39] 王建林,温学发,赵风华,等. CO2浓度倍增对8种作物叶片光合作用、蒸腾作用和水分利用效率的影响[J]. 植物生态学报,2012,36(5):438-446
[40] Sawada S, Kuninaka M, Watanabe K. The mechanism to suppress photosynthesis through end-product inhibition in single-rooted soybean leaves during acclimation to CO2enrichment[J]. Plant and Cell Physiology,2001,42:1093-1102
[41] 赵天宏,郭丹,王美玉,等. 连续两个生长季大气CO2浓度升高对银杏希尔反应活力和叶绿体ATP酶活性的影响[J]. 生态学报,2009,29(3):1391-1397
[42] Sage R F, Sharkey T D, Seemann I R. Acclimation of Photosynthesis to elevated CO2 in five C3species[J]. Plant Physiology,1989,89:590-596
[43] 刘露,丁柳丽,陈伟洲,等. 不同温度下CO2浓度增高对坛紫菜生长和叶绿素荧光特性的影响[J]. 生态学报,2013,33(13):3916-3924
[44] 王彦平,黄志喆,孙瑞,等. 高浓度CO2对切花菊瓶插品质、生理及结构特征的影响[J]. 中国农业科学,2010,43(21):4463-4472 |