[1] 郭义强, 罗明, 王军. 中德典型露天煤矿排土场土地复垦技术对比研究[J]. 中国矿业, 2016, 25(2): 63 − 68.

GUO Yiqiang, LUO Ming, WANG Jun. Study on comparison of land reclamation technology in typical surface mine dump between China and Germany [J]. China Min Mag, 2016, 25(2): 63 − 68.
[2] 吕凯, 李雪飞, 智颖飙. 露天煤矿排土场生物修复与生态重建技术[J]. 内蒙古师范大学学报(自然科学汉文版), 2019, 48(5): 458 − 464.

LÜ Kai, LI Xuefei, ZHI Yingbiao. Mechanism of phytoremediation and co-reconstruction for waste dump in open-cast collieries [J]. J Inner Mongolia Norm Univ Nat Sci Ed, 2019, 48(5): 458 − 464.
[3] 刘韵, 王若水, 张艳, 等. 春季黄河附近乌海市露天煤矿大气不同粒径粉尘质量浓度分布规律[J]. 中国水土保持科学, 2020, 18(3): 1 − 11.

LIU Yun, WANG Ruoshui, ZHANG Yan, et al. Dust concentration distribution patterns of different particulate matter in atmosphere in a surface coal mine of Wuhai City near the Yellow River during spring [J]. Sci Soil Water Conserv, 2020, 18(3): 1 − 11.
[4] 陈晓艳, 白洁冰. 乌海市区大气污染特征及防治对策研究[J]. 环境与发展, 2014, 26(3): 31 − 33.

CHEN Xiaoyan, BAI Jiebing. Study on the air pollution characteristics of Wuhai urban dis trict and its coutermeasures for control [J]. Environ Dev, 2014, 26(3): 31 − 33.
[5] 关军洪, 郝培尧, 董丽, 等. 矿山废弃地生态修复研究进展[J]. 生态科学, 2017, 36(2): 193 − 200.

GUAN Junhong, HAO Peiyao, DONG Li, et al. Review on ecological restoration of mine wasteland [J]. Ecol Sci, 2017, 36(2): 193 − 200.
[6] 韩涛, 梁旭燕. 煤矿矿区大气污染现状及对策[J]. 能源环境保护, 1994, 8(4): 24 − 26.

HAN Tao, LIANG Xuyan. Present situation and countermeasure of air pollution in coal mine area [J]. Energy Environ Prot, 1994, 8(4): 24 − 26.
[7] BECKETT K P, FREER-SMITH P H, TAYLOR G. Effective tree species for local air quality management [J]. J Arboric, 2000, 26(1): 12 − 19.
[8] 柴一新, 祝宁, 韩焕金. 城市绿化树种的滞尘效应: 以哈尔滨市为例[J]. 应用生态学报, 2002, 13(9): 1121 − 1126.

CHAI Yixin, ZHU Ning, HAN Huanjin. Dust removal effect of urban tree species in Harbin [J]. Chin J Appl Ecol, 2002, 13(9): 1121 − 1126.
[9] 刘晓娟, 马克平. 植物功能性状研究进展[J]. 中国科学: 生命科学, 2015, 45(4): 325 − 339.

LIU Xiaojuan, MA Keping. Plant functional traits: concepts, applications and future directions [J]. Sci Sin Vitae, 2015, 45(4): 325 − 339.
[10] KLUMPP K, SOUSSANA J F. Using functional traits to predict grassland ecosystem change: a mathematical test of the response-and-effect trait approach [J]. Global Change Biol, 2010, 15(12): 2921 − 2934.
[11] 彭少麟. 恢复生态学与退化生态系统的恢复[J]. 中国科学院院刊, 2000(3): 188 − 192.

PENG Shaolin. Restoration ecology and restoration of degraded ecosystems [J]. Bull Chin Acad Sci, 2000(3): 188 − 192.
[12] 廖莉团, 苏欣, 李小龙, 等. 城市绿化植物滞尘效益及滞尘影响因素研究概述[J]. 森林工程, 2014, 30(2): 21 − 24.

LIAO Lituan, SU Xin, LI Xiaolong, et al. Review on the purification effects of urban landscape plants and factors affecting detaining dust [J]. For Eng, 2014, 30(2): 21 − 24.
[13] JANHÄLL S. Review on urban vegetation and particle air pollution: deposition and dispersion [J]. Atmos Environ, 2015, 105: 130 − 137.
[14] 王丽丽, 甄庆, 王颖, 等. 晋陕蒙矿区排土场不同改良模式下土壤养分效应研究[J]. 土壤学报, 2018, 55(6): 1525 − 1533.

WANG Lili, ZHEN Qing, WANG Ying, et al. Effect of soil amelioration on soil nutrients at mining dumps in the Shanxi-Shaanxi-Inner Mongolia Region [J]. Acta Pedol Sin, 2018, 55(6): 1525 − 1533.
[15] NOVÁK J, PRACH K. Vegetation succession in basalt quarries: pattern on a landscape scale [J]. Appl Veg Sci, 2003, 6(2): 111 − 116.
[16] 任蔓莉, 魏晨辉, 裴忠雪, 等. 松嫩平原沙土区不同植被类型对土壤相关指标的影响[J]. 植物研究, 2015, 35(5): 765 − 771.

REN Manli, WEI Chenhui, PEI Zhongxue, et al. Influences of different vegetation types on soil parameters in degraded sandy lands of Songnen Plain [J]. Bull Bot Res, 2015, 35(5): 765 − 771.
[17] 原野, 赵中秋, 白中科, 等. 露天煤矿复垦生物多样性恢复技术体系与方法: 以平朔矿排土场为例[J]. 中国矿业, 2017, 26(8): 93 − 98.

YUAN Ye, ZHAO Zhongqiu, BAI Zhongke, et al. Technology system and method of biodiversity restoration for the reclamation of opencast coal mine: a case study from the dumps in Pingshuo mine [J]. China Min Mag, 2017, 26(8): 93 − 98.
[18] 李晋川, 王翔, 岳建英, 等. 安太堡露天矿植被恢复过程中土壤生态肥力评价[J]. 水土保持研究, 2015, 22(1): 66 − 71, 79.

LI Jinchuan, WANG Xiang, YUE Jianying, et al. Evaluation on soil ecologic fertility during vegetation succession in Antaibao Open Pit [J]. Res Soil Water Conserv, 2015, 22(1): 66 − 71, 79.
[19] LAUGHLIN D C. Applying trait-based models to achieve functional targets for theory-driven ecological restoration [J]. Ecol Lett, 2014, 17(7): 771 − 784.
[20] JENTSCH A. The challenge to restore processes in face of nonlinear dynamics: on the crucial role of disturbance regimes [J]. Restoration Ecol, 2007, 15(2): 334 − 339.
[21] KEDDY P A, SHIPLEY B. Competitive hierarchies in herbaceous plant communities [J]. Oikos, 1989, 54(2): 234 − 241.
[22] GRIME J P. Benefits of plant diversity to ecosystems: immediate, filter and founder effects [J]. J Ecol, 1998, 86(6): 902 − 910.
[23] LAUGHLIN D C, LAUGHLIN D E. Advances in modeling trait-based plant community assembly [J]. Trends Plant Sci, 2013, 18(10): 584 − 593.
[24] 郭光. 内蒙古乌海市新星矿区露天煤矿生态修复治理规划研究[D]. 北京: 北京林业大学, 2020.

GUO Guang. Study on Open-pit Coal Mine Ecological Restoration and Planning in Xinxing Mining Area, Wuhai City, Inner Mongolia[D]. Beijing: Beijing Forestry University, 2020.
[25] 张灵艺, 秦华. 城市园林绿地滞尘研究进展及发展方向[J]. 中国园林, 2015, 31(1): 64 − 68.

ZHANG Lingyi, QIN Hua. Research on progress of dust-retention for urban green space [J]. Chin Landscape Archit, 2015, 31(1): 64 − 68.
[26] 岳晨, 李广德, 席本野, 等. 叶片大气颗粒物滞纳能力评估方法的定量对比[J]. 环境科学, 2021, 42(1): 114 − 126.

YUE Chen, LI Guangde, XI Benye, et al. Quantitative comparison of methods to assess the airborne particulate matter retention capacity of leaves [J]. Environ Sci, 2021, 42(1): 114 − 126.
[27] ACKERLY D D, CORNWELL W K. A trait-based approach to community assembly: partitioning of species trait values into within-and among-community components [J]. Ecol Lett, 2007, 10(2): 135 − 145.
[28] SHIPLEY B, VILE D, GARNIER E. From plant traits to plant communities: a statistical mechanistic approach to biodiversity [J]. Science, 2006, 314(5800): 812 − 814.
[29] 王金满, 杨睿璇, 白中科. 草原区露天煤矿排土场复垦土壤质量演替规律与模型[J]. 农业工程学报, 2012, 28(14): 229 − 235.

WANG Jinman, YANG Ruixuan, BAI Zhongke. Succession law and model of reclaimed soil quality of opencast coal mine dump in grassland [J]. Trans Chin Soc Agric Eng, 2012, 28(14): 229 − 235.
[30] 田起隆, 刘彤. 极端干旱环境下白梭梭细根分布与土壤水分关系[J]. 石河子大学学报, 2020, 38(1): 75 − 82.

TIAN Qilong, LIU Tong. Relationship between the distribution characteristics of fine roots of Haloxylon persicum and soil moisture under extreme drought conditions [J]. J Shihezi Univ, 2020, 38(1): 75 − 82.
[31] 李鸿儒, 王继和, 蒋志荣, 等. 白刺沙包发育过程的土壤水分与根系生物量的关系[J]. 甘肃农业大学学报, 2010, 45(6): 133 − 138.

LI Hongru, WANG Jihe, JIANG Zhirong, et al. Relationship between soil moisture and root biomass during developmental process of Nitraria tangutorum nebkha [J]. J Gansu Agric Univ, 2010, 45(6): 133 − 138.
[32] 韩锦峰, 汪耀富, 张新堂. 土壤水分对烤烟根系发育和根系活力的影响[J]. 中国烟草, 1992(3): 14 − 17.

HAN Jinfeng, WANG Yaofu, ZHANG Xintang. Effects of soil moisture on root development and root activity of flue-cured tobacco [J]. China Tob, 1992(3): 14 − 17.
[33] 席璐璐, 缑倩倩, 王国华, 等. 荒漠绿洲过渡带典型1年生草本植物对干旱胁迫的响应[J]. 生态学报, 2021, 41(13): 5425 − 5434.

XI Lulu, GOU Qianqian, WANG Guohua, et al. The responses of typical annual herbaceous plants to drought stress in a desert-oasis ecotone [J]. Acta Ecol Sin, 2021, 41(13): 5425 − 5434.
[34] 邓雅元, 赵廷宁, 张艳, 等. 基于SEM-EDS的荒漠草原区煤炭基地及其周边春季大气降尘特征及来源解析[J]. 中国环境科学, 2021, 41(12): 5512 − 5521.

DENG Yayuan, ZHAO Tingning, ZHANG Yan, et al. Characterization and source appointment of atmospheric dust fall in Coal Base and surrounding areas in desert steppe based on SEM-EDS [J]. China Environ Sci, 2021, 41(12): 5512 − 5521.
[35] 杨修, 高林. 德兴铜矿矿山废弃地植被恢复与重建研究[J]. 生态学报, 2001, 21(11): 1932 − 1940.

YANG Xiu, GAO Lin. A study on re-vegetation in mining wasteland of Dexing Copper Mine, China [J]. Acta Ecol Sin, 2001, 21(11): 1932 − 1940.
[36] 于泳, 杨伟, 李璐, 等. 弃渣场植被恢复与重建研究进展综述[J]. 亚热带水土保持, 2015, 27(3): 2 − 5, 28.

YU Yong, YANG Wei, LI Lu, et al. Review on the research progress of vegetation restoration and reconstruction in slag disposal sites [J]. Subtrop Soil Water Conserv, 2015, 27(3): 2 − 5, 28.
[37] HOU Jian, YANG Jianying, TAN Jin. A new method for revealing spatial relationships between shrubs and soil resources in arid regions[J/OL]. Catena, 2019, 183[2021-08-10]. doi. org/10.1016/j. catena. 2019.104187.
[38] 彭磊, 张力, 周小龙, 等. 水分胁迫对新疆准东地区钠猪毛菜的生活史对策的影响[J]. 草业学报, 2021, 30(5): 65 − 74.

PENG Lei, ZHANG Li, ZHOU Xiaolong, et al. Effects of water stress on life history strategy of Salsola nitrariain Zhundong, Xinjiang [J]. Acta Pratac Sin, 2021, 30(5): 65 − 74.
[39] 任尚福. 南疆不同生境骆驼蓬叶片解剖结构的生态适应性[J]. 黑龙江农业科学, 2018(8): 19 − 23.

REN Shangfu. Ecological adaptability of leaf anatomical structure of Peganum harmalain different habitats of Southern Xinjiang [J]. Heilongjiang Agric Sci, 2018(8): 19 − 23.
[40] 郭新新, 左小安, 岳平, 等. 内蒙古荒漠草原沙生针茅、碱韭(Allium polyrhizum)和骆驼蓬叶形态性状对土壤水氮耦合的响应[J]. 中国沙漠, 2021, 41(1): 137 − 144.

GUO Xinxin, ZUO Xiaoan, YUE Ping, et al. Responses of leaf morphological traits of three dominant plants to water and nitrogen in desert steppe of Inner Mongolia [J]. J Desert Res, 2021, 41(1): 137 − 144.