[1] 易自力. 芒属能源植物资源的开发与利用[J]. 湖南农业大学学报(自然科学版),2012,38(5):455-463 [2] 廖雄辉,龙琴,王惠群,等. 南荻炭与镉钝化剂互作对水稻镉含量和产量的影响[J]. 农业环境科学学报,2018,37(9):1818-1826 [3] 廖雄辉,周晓溦,蔡丹,等. 南荻炭基土壤调理剂施用对水稻光合特性及产量的影响[J]. 中国农业科技导报,2019,21(8):132-139 [4] PARK H J,OH S W,WEN M Y. Manufacture and properties of Miscanthus-wood particle composite boards[J]. Journal of Wood Science,2012,58(5):459-464 [5] 伍旖旎,许依,傅童成,等. 施氮对贫瘠红壤定植芒草根际土有机碳矿化过程的影响[J]. 草地学报,2022,30(4):801-809 [6] XU Y,ZHENG C,LIANG L,et al. Quantitative assessment of the potential for soil improvement by planting Miscanthus on saline-alkaline soil and the underlying microbial mechanism[J]. Global Change Biology Bioenergy,2021,13(7):1191-1205 [7] 薛帅,易自力,黄红梅,等. 洞庭湖“芦苇”产业发展面临的困境及对策分析[J]. 环境生态学,2022,4(4):33-38 [8] SCHNITZLER A,ESSL F. From horticulture and biofuel to invasion:the spread of Miscanthus taxa in the USA and Europe[J]. Weed Research,2015,55(3):221-225 [9] BONIN C L,HEATON E A,BARB J. Miscanthus sacchariflorus-biofuel parent or new weed?[J]. Global Change Biology Bioenergy,2014,6(6):629-636 [10] XUE S. Approaches to improve the implementation and expansion of Miscanthus production[D]. Stuttgart:University of Hohenheim,2016:15 [11] XUE S,LEWANDOWSKI I,WANG X,et al. Assessment of the production potentials of Miscanthus on marginal land in China[J]. Renewable and Sustainable Energy Reviews,2016,54:932-943 [12] 曹晓风,孙波,陈化榜,等. 我国边际土地产能扩增和生态效益提升的途径与研究进展[J]. 中国科学院院刊,2021,36(3):336-348 [13] QUINN L D,STRAKER K C,GUO J,et al. Stress-Tolerant Feedstocks for Sustainable Bioenergy Production on Marginal Land[J]. Bioenergy Research,2015,8(3):1081-1100 [14] HEDENEC P,NOVOTNY D,USTAK S,et al. Allelopathic effect of new introduced biofuel crops on the soil biota:A comparative study[J]. European Journal of Soil Biology,2014,63:14-20 [15] 舒骏,成向荣,虞木奎,等. 刈割对五节芒化感作用及次生代谢物质的影响[J]. 草地学报,2016,24(1):76-83 [16] BIMAL K G,MYEONG H H,ERIK J S,et al. Screening of Allelochemicals in Miscanthus sacchariflorus Extracts and Assessment of Their Effects on Germination and Seedling Growth of Common Weeds[J]. Plants,2020,9(10):1313 [17] 刘迎. 白三叶草对杂草化感作用的初步研究[D]. 泰安:山东农业大学,2007:31-40 [18] 李晓凤. 雪松对其树下植物多样性影响的机制研究[D]. 合肥:安徽农业大学,2015:18-22 [19] 姚树宽,李凤兰,彭丽娜,等. 假苍耳不同部位水浸提液对五种十字花科植物化感作用的研究[J]. 草业学报,2018,27(9):56-66 [20] 曾任森. 化感作用研究中的生物测定方法综述[J]. 应用生态学报,1999(1):125-128 [21] BRUCE W G,RICHARDSON D. Bioassays for allelopathy:measuring treatment responses with independent controls[J]. Journal of Chemical Ecology,1988,14(1):181-187 [22] 曾丽,胡勐鸿. 雪松针叶浸提液对三种草坪草种子萌发和早期生长的化感作用[J]. 温带林业研究,2022,5(2):1-7 [23] 黄良伟,傅蝶子,白婧,等. 细叶旱芹地上部化感物质粗分离物对4种草坪草及5种牧草的化感作用[J]. 西北农业学报,2020,29(7):1078-1086 [24] 包赛很那,王向涛,武俊喜,等. 苗期劲直黄芪根浸提液对8种西藏野生植物化感作用的研究[J]. 草业学报,2021,30(5):211-220 [25] 刘书彤,王楠,李建安. 油茶浸提液对2种牧草的化感作用[J]. 分子植物育种,2020,18(10):3373-3381 [26] 李敏,闫兴富,马丽,等. 酚酸类化感自毒物质对枸杞种子萌发的抑制作用[J]. 生态学报,2020,40(6):2072-2079 [27] 李琳琳,刘建国,燕鹏,等. 不同外源酚酸化感物质组合对棉花种子萌发和幼苗生长的化感效应[J]. 生态科学,2019,38(6):115-119 [28] 郭孟齐,杨塞,易自力,等. 我国芒属植物规模化种植的生态风险评估[J]. 中国农业大学学报,2019,24(6):49-56 [29] 李凤兰,武佳文,姚树宽,等. 假苍耳不同部位水浸提液对5种土著植物化感作用的研究[J]. 草业学报,2020,29(9):169-178 [30] 鲍红春,郝丽珍,张凤兰,等. 沙芥水浸提液对白菜种子萌发和幼苗生长的化感作用[J]. 植物生理学报,2015,51(7):1109-1116 [31] CHON S U,CHOI S K,JUNG S,et al. Effects of alfalfa leaf extracts and phenolic allelochemicals on early seedling growth and root morphology of alfalfa and barnyard grass[J]. Crop protection,2002,21(10):1077-1082 [32] 李金鑫,叶俊伟,刘大会. 巴茅草水浸提液对3种作物种子萌发及幼苗生长的化感作用[J]. 应用生态学报,2020,31(7):2219-2226 |