参考文献:
[1] Fraser, L. H., Pither, J., Jentsch, A., et al. Worldwide evidence of a unimodal relationship between productivity and plant species richness [J]. Science, 2015, 349(6245): 302-305.
     [2] Grace, J. B., Anderson, T. M., Seabloom, E. W., et al. Integrative modelling reveals mechanisms linking productivity and plant species richness [J]. Nature, 2016, 529(7586): 390-393.
     [3] Xu, M. H., Du, R., Li, X. L., et al. The mid-domain effect of mountainous plants is determined by community life form and family flora on the Loess Plateau of China [J]. Scientific Reports, 2021, 11: 10974.
     [4] Xu, M. H., Zhang, S. X., Wen, J., et al. Multiscale spatial patterns of species diversity and biomass together with their correlations along geographical gradients in subalpine meadows [J]. PLoS ONE, 2019, 14(2): e0211560.
     [5] 马丽, 徐满厚, 周华坤等. 山西亚高山草甸植被生物量的地理空间分布[J]. 生态学杂志, 2018, 37(8): 2244-2253.
     [6] Poorter, H., Niklas, K. J., Reich, P. B., et al. Biomass allocation to leaves, stems and roots: Meta-analyses of interspecific variation and environmental control [J]. New Phytologist, 2012, 193(1): 30-50.
     [7] Duncanson, L. I., Dubayah, R. O., Enquist, B. J. Assessing the general patterns of forest structure: Quantifying tree and forest allometric scaling relationships in the United States [J]. Global Ecology and Biogeography, 2015, 24(12): 1465-1475.
     [8] 李晓丽, 徐满厚, 孟万忠等. 模拟增温对云顶山亚高山草甸水热因子及群落结构的影响[J]. 生态学报, 2020, 40(19): 6885-6896.
     [9] 徐满厚, 李晓丽. 基于物种多样性与生物量关系的草地群落稳定性对全球变暖的响应研究进展[J]. 西北植物学报, 2021, 41(2): 348-358.
     [10] 晁倩, 温静, 杨晓艳等. 云顶山亚高山草甸植物物种多样性对模拟增温的响应[J]. 环境生态学, 2019, 1(4): 34-40.
     [11] 王誉陶, 毕玉婷, 王倩等. 山西亚高山草甸植物群落物种多样性的空间分异[J]. 中国农学通报, 2018, 34(18): 77-83.
     [12] 张世雄, 杨晓艳, 温静等. 山西吕梁山亚高山草甸物种多样性的时空变化格局[J]. 生态学报, 2018, 38(18): 6685-6693.
     [13] Xu, M. H., Ma, L., Jia, Y. Y., et al. Integrating the effects of latitude and altitude on the spatial differentiation of plant community diversity in a mountainous ecosystem in China [J]. PLoS ONE, 2017, 12(3): e0174231.
     [14] Xu, M. H., Li, X. L., Liu, M., et al. Spatial variation patterns of plant herbaceous community response to warming along latitudinal and altitudinal gradients in mountainous forests of the Loess Plateau, China [J]. Environmental and Experimental Botany, 2020, 172: 103983.
     [15] 徐满厚, 温静, 张世雄等. 模拟增温下青藏高原高寒草甸根系生物量数据集[J]. 全球变化数据学报, 2017, 1(4): 475-480.
     [16] 徐满厚. 模拟增温的青藏高原高寒草甸根系生物量实验数据集[J/DB/OL]. 全球变化数据仓储电子杂志(中英文), 2017. https://doi.org/10.3974/geodb.2017.02.15.V1.
     [17] 张世雄, 杨晓艳, 温静等. 吕梁山亚高山草甸物种多样性数据集(2015-2017)[J/DB/OL]. 全球变化数据仓储电子杂志(中英文), 2019. https://doi.org/10.3974/geodb.2019.01.06.V1.
     [18] 张世雄, 秦瑞敏, 杨晓艳等. 山西吕梁山草本群落物种多样性的海拔梯度格局及与环境因子的关系[J]. 广西植物, 2020, 40(12): 1860-1868.
     [19] 刘敏, 张潇月, 李晓丽等. 黄土高原林下草地对模拟增温的短期响应[J]. 生态学报, 2020, 40(17): 6009-6024.
     [20] 徐满厚, 杜荣, 杨晓辉等. 管涔山林下草本层植物对模拟增温的响应[J]. 中国野生植物资源, 2021, 40(10): 45-52.
     [21] 杨晓艳, 秦瑞敏, 张世雄等. 山西吕梁山草本群落对模拟增温的响应及与环境因子的关系[J]. 西南农业学报, 2020, 33(6): 1291-1300.
     [22] 杨晓艳, 张世雄, 温静等. 吕梁山森林群落草本层植物物种多样性的空间格局及其对模拟增温的响应[J]. 生态学报, 2018, 38(18): 6642-6654.
     [23] 徐满厚, 马丽, 白皓宇等. 山西吕梁山植被群落多样性的垂直空间分异[J]. 江苏农业科学, 2017, 45(12): 256-260.
     [24] 朱桂丽, 李杰, 魏学红等. 青藏高寒草地植被生产力与生物多样性的经度格局[J]. 自然资源学报, 2017, 32(2): 210-222.