[1] THIENELT T S,ANDERSON D E. Estimates of energy partitioning,evapotranspiration,and net ecosystem exchange of CO2 for an urban lawn and a tallgrass prairie in the Denver metropolitan area under contrasting conditions[J]. Urban Ecosystems,2021,24(12):1201-1220 [2] 李丽菁,张智韦,薛云,等. 低温胁迫对日本结缕草叶绿素代谢的影响[J]. 北京林业大学学报,2022,44(2):91-99 [3] 李进超,张智韦,张嘉航,等. 乙烯利对结缕草响应低温胁迫的作用[J]. 草业科学,2023,40(12):3000-3008 [4] MOTA F D,BÔAS R L V,MATEUS C,et al. Sewage sludge compost in zoysia grass sod production[J]. Ambiente & Água-An Interdisciplinary Journal of Applied Science,2019,14(1):2301-2311 [5] GILBERT W B,DAVIS D L. Influence of fertility ratios on winter hardiness of bermudagrass[J]. Agronomy Journal,1971,63(4):591-593 [6] KHORSHID R,SEIJI K. Effect of fertility ratios on growth and turf quality of perennial ryegrass (Lolium Perenne L.) in winter[J]. Journal of Plant Nutrition,1993,16(8):1531-1538 [7] 刘克锋,刘悦秋,石爱平,等. 不同配比复混肥对瓦巴斯草坪草生长性状影响的研究[J]. 北京农学院学报,2002(3):10-12 [8] 黄瑞霞. 修剪对草地早熟禾草坪蒸散和养分分配的影响[D]. 呼和浩特:内蒙古农业大学,2020:30-41 [9] 崔继光. 施肥对修剪草坪恢复生长以及叶片色素影响的研究[J]. 农学学报,2012,2(4):34-37 [10] 宋娅丽,王克勤. 修剪高度对季节性温度变化下早熟禾生理生态特性的影响[J]. 草地学报,2018,26(4):971-977 [11] 阚海明,徐恒康,鲁佳男,等. 不同丛枝菌根真菌接种对3种草地植物生长特性的影响[J]. 草地学报,2023,31(7):1922-1930 [12] 叶少萍,曾秀华,辛国荣,等. 不同磷水平下丛枝菌根真菌(AMF)对狗牙根生长与再生的影响[J]. 草业学报,2013,22(1):46-52 [13] 单立文. AMF在不同处理条件下对草地植物光合特征及其生产力影响的研究[D]. 哈尔滨:哈尔滨师范大学,2020:26-36 [14] PHILIPPOT L,CHENU C,KAPPLER A,et al. The interplay between microbial communities and soil properties[J]. Nature Reviews Microbiology,2024(22):226-239 [15] 张如莲. 草坪施肥研究进展[J]. 热带农业科学,2002,22(4):77-81 [16] 杨衡荣. 不同养护措施对兰引三号结缕草冬春季生理生态特征的影响[D]. 广州:中山大学,2021:9-17 [17] 林大仪. 土壤学实验指导[M]. 北京:中国林业出版社,2004:42-166 [18] 张志良,瞿伟菁. 植物生理学实验指导[M]. 第三版.北京:高等教育出版社,2003:268-272 [19] 叶尚红,陈疏影,刘平祖. 农业院校植物生理生化实验教材体系探讨[J]. 植物生理学通讯,2004(4):487-488 [20] 王幼珊,张淑彬,张美庆. 中国丛枝菌根真菌资源与种质资源[M]. 北京:中国农业出版社,2012:166-168 [21] GIOVABBETTI M,MOSSE B. An evaluation of techniques for measuring vesicular arbuscular mycorrhizal infection in roots[J]. New Phytologist,2010,84(3):489-500 [22] 鲍士旦. 土壤农化分析[M]. 第三版.北京:中国农业出版社,2000:263-274 [23] 鲁如坤. 土壤农业化学分析方法[M]. 北京:农业科技出版社,2000:30-70 [24] LIU Z,DESANTIS T Z,ANDERSEN G L,et al. Accurate taxonomy assignments from 16S rRNA sequences produced by highly parallel pyrosequencers[J]. Nucleic Acids Research,2008,36(18):1-11 [25] PRATES A R, DOS SANTOS P L F, DO NASCIMENTO M L, et al. Nitrogen doses in the development of DiscoveryTM Bermudagrass during winter[J]. Ornamental Horticulture,2020,26(3):468-474 [26] 张吉立. 不同硝酸铵处理对草地早熟禾叶绿素含量及生长的影响[J]. 草原与草坪,2018,38(5):83-86,92 [27] SACK F. Leaf structural diversity is related to hydraulic capacity in tropical rain forest trees[J]. Ecology,2006,87(2):483-491 [28] BRODRIBB T J,FEILD T S. Evolutionary significance of a flat-leaved Pinus in Vietnamese rainforest[J]. New Phytologist,2010,178(1):201-209 [29] BENTLEY L P,STEGEN J C,SAVAGE V M,et al. An empirical assessment of tree branching networks and implications for plant allometric scaling models[J]. Ecology Letters,2013,16(8):1069-1078 [30] JANELLE K H J,SUSAN M C. Getting to the roots of it:Genetic and hormonal control of root architecture[J]. Frontiers in Plant Science,2013(4):186 [31] GRECHI I,VIVIN P,HIL B R G,et al. Effect of light and nitrogen supply on internal C∶N balance and control of root-to-shoot biomass allocation in grapevine[J]. Environmental and Experimental Botany,2007,59(2):139-149 [32] 孟利芳,姚晓翠,但瑶,等. 施肥对盐碱地饲用燕麦根际土壤微生物多样性的影响[J]. 草地学报,2023,31(10):2960-2967 [33] 刘学彤,郑春莲,曹薇,等. 长期定位施肥对土壤有机质、不同形态氮含量及作物产量的影响[J]. 作物杂志,2021,(4):130-135 [34] 赵士诚,曹彩云,李科江,等. 长期秸秆还田对华北潮土肥力、氮库组分及作物产量的影响[J]. 植物营养与肥料学报,2014,20(6):1441-1449 [35] 曹丽花,赵世伟. 土壤有机碳库的影响因素及调控措施研究进展[J]. 西北农林科技大学学报(自然科学版),2007(3):82-87 [36] WILBER W L,WILLIAMSON J G. Effects of fertilizer rate on growth and fruiting of containerized southern highbush blueberry[J]. HortSience,2008,43(1):143-145 [37] 马文军,武均,宋雪峰,等. 不同施肥处理对马铃薯农田土壤理化性状及产量的影响[J]. 中国农学通报,2021,37(15):87-91 [38] 陈钦程,徐福利,王渭玲,等. 秦岭北麓不同林龄华北落叶松土壤有效钾变化规律[J]. 植物营养与肥料学报,2014,20(5):1243-1249 [39] ZHAO Z,CHEN L,XIAO Y. The combined use of arbuscular mycorrhizal fungi,biochar and nitrogen fertilizer is most beneficial to cultivate Cichorium intybus L. in Cd-contaminated soil[J]. Ecotoxicology and Environmental Safety,2017,217:112154 [40] SMITH S E,JAKOBSEN S I. Functional diversity in arbuscular mycorrhizal (AM) symbioses:the contribution of the mycorrhizal P uptake pathway is not correlated with mycorrhizal responses in growth or total P uptake[J]. New Phytologist,2004,162:511-524 [41] KONVALINKOV T,PSCHEL D,JANOUKOV M,et al. Duration and intensity of shade differentially affects mycorrhizal growth- and phosphorus uptake responses of Medicago truncatula[J]. Frontiers in Plant Science,2015,6(65):1-11 [42] CHEN Y L,ZHANG X,YE J S,et al. Six-year fertilization modifies the biodiversity of arbuscular mycorrhizal fungi in a temperate steppe in Inner Mongolia[J]. Soil Biology & Biochemistry,2014,69:371-381 [43] PAZ-FERREIRO J.FU S,Biological indices for soil quality evaluation:Perspectives and limitations[J]. Land Degradaiton & Development,2016,27(1):14-25 [44] GORLENKO V M. History of the Study of biodiversity of photosynthetic bacteria[J]. Microbiology,2004,73(5):541-550 [45] WU T. Can ectomycorrhizal fungi circumvent the nitrogen mineralization for plant nutrition in temperate forest ecosystems?[J]. Soil Biology & Biochemistry,2011,43(6):1109-1117 |