欢迎生态学、自然地理学及相关学科学生联系报考;欢迎本科生加入课题组开展学术活动;长期招收群落生态学、植被生态学以及生态遥感方向博士后。主要研究方向见科研课题部分。Prospective students and postdoctors interested in different aspects of ecology and/or biogeography are welcome. Please contact: zytang(at)pku.edu.cn
Gheyret G, Guo YP, Fang JY, Tang ZY*. 2020. Latitudinal and elevational patterns of phylogenetic structure in forest communities in China’s mountains. Science China Life Science 63: 1895-1904.
Zhang HT, ..., Tang ZY*. 2022. Environment shapes tree community traits in China's forests. Journal of Vegetation Sciences 33: e13146.
Qiao XJ, Jabot F, Tang ZY*, et al. 2015. A latitudinal gradient in tree community assembly processes evidenced in forests of China. Global Ecology & Biogeography 24: 314-323.
生物多样性与生态系统功能 Biodiversity and ecosystem functioning
Zhang HT, …, Tang ZY*. 2024. Neighborhood functional dissimilarity promotes stem radial growth by mitigating tree water deficit. National Science Review doi: 10.1093/nsr/nwad320.
Zhang HT, …, Tang ZY*. 2024. Spatiotemporal variation in the negative effect of neighbourhood crowding on stem growth. Journal of Ecologydoi: 10.1111/1365-2745.14291.
Guo YP, ......, Tang ZY*, 2019. Increasing water availability and facilitation weaken biodiversity–biomass relationships in shrublands. Ecology 100: e02624.
Zhang YQ,..., Tang ZY*. 2024. Functional diversity of neighbors mediates sap flow density and radial growth of focal trees, but in different ways between evergreen and deciduous broadleaved species. Functional Ecology doi: 10.1111/1365-2435.14610.
生物多样性保护 Biological conservation
Huang L, ... Yang YC*, Tang ZY*, Lindenmayer DB*. 2023. Human activities and species biological traits drive the long-term persistence of old trees in human-dominated landscapes. Nature Plants 9: 898–907.
Bai YH, …, Tang ZY⁎. 2020. Conservation status of Primulaceae, a plant family with high endemism, in China. Biological Conservation 248: 108675.
Zhang SY, …, Tang ZY⁎. 2020. Representativeness of threatened terrestrial vertebrates in nature reserves in China. Biological Conservation 246: 108599.
Yan YJ, …, Tang ZY*, Yao YJ*. 2017. Range shifts in response to climate change of Ophiocordyceps sinensis, a fungus endemic to the Tibetan Plateau. Biological Conservation 206: 143-150.
Zhang ZJ, …, Tang ZY*. 2015. Distribution and conservation of threatened plants in China. Biological Conservation 192: 454-460.
Tang ZY, et al. 2006. Biodiversity in China's mountains. Frontiers in Ecology and the Environment 4: 347-352.
生态化学计量 Ecological stoichiometry
Tang ZY#, Xu WT#, Zhou GY#, et al. 2018. Patterns of plant carbon, nitrogen, and phosphorus concentration in relation to productivity in China’s terrestrial ecosystems. PNAS 115: 4033-4038.
Guo YP, ......, Tang ZY*, 2020. The community-level scaling relationship between leaf nitrogen and phosphorus exhibits vegetation’s strategies for nutrient utilization. Journal of Ecology 108: 1276–1286. doi: 10.1111/1365-2745.13369.
Yang X, …, Tang ZY*. 2016. Variations of leaf N, P concentrations in shrubland biomes across Northern China: phylogeny, climate and soil. Biogeosciences 13: 4429.
Zhang YW, Guo YP, Tang ZY* et al. 2021. Patterns of nitrogen and phosphorus pools in terrestrial ecosystems in China. Earth System Science Data 13: 5337-5351. (data available at: https://doi.org/10.5061/dryad.6hdr7sqzx, 2021.)
二、全部论文列表 Full list of publications
2024
225. Zhang HT, Gheyret G*, ..., Tang ZY*. 2024. Neighborhood functional dissimilarity promotes stem radial growth by mitigating tree water deficit. National Science Review 11: nwad320. doi: 10.1093/nsr/nwad320.
224. Zhang HT, …, Tang ZY*. 2024. Spatiotemporal variation in the negative effect of neighbourhood crowding on stem growth. Journal of Ecology doi: 10.1111/1365-2745.14291.
223. Zhang YQ,..., Tang ZY*. 2024. Functional diversity of neighbors mediates sap flow density and radial growth of focal trees, but in different ways between evergreen and deciduous broadleaved species. Functional Ecology doi: 10.1111/1365-2435.14610.
222. Zhang YW, ... Wang T*, Tang ZY*. Satellite hyperspectral imagery reveals scale dependence of functional diversity patterns in a Qinghai-Tibetan alpine meadow. International Journal of Applied Earth Observation and Geoinformation 129: 103868.
221. Fang WJ, …, Tang ZY*, Fang JY*. 2024. Life forms affect beta-diversity patterns of larch forests in China. Plant Diversity 46: 49-58. doi: 10.1016/j.pld.2023.10.003.
220. He CQ …, Tang ZY*, Fang JY*. 2024.Sampling origins and directions affect the minimum sampling area in forest plots. Journal of Vegetation Science 35: e13232. doi: 10.1111/jvs.13232.
219. Song, SS, …Tang, ZY. Precipitation Variability Has a Weak but Significant Stabilizing Effect on Community Structure. Ecosystem Health and Sustainability 10: 1-9. doi: 10.34133/ehs.0184.
218. Ao et al. 2024. A national-scale assessment of land subsidence in China's major cities. Science 384: 301-306.
217. Fang WJ et al., 2024. Plant community structure and environmental factors regulate the N-P stoichiometry of soil and leaf for larch forests in Northern China. Journal of Forestry Research (accepted).
216. Luo A. et al.. 2024. Global multifaceted biodiversity patterns, centers, and conservation needs in angiosperms. Science China Life Science doi: 10.1007/s11427-023-2430-2.
215. Ouyang M. et al., 2024. The scaling of elemental stoichiometry and growth rate over the course of bamboo ontogeny. New Phytologist 241: 1088-1099. doi: 10.1111/nph.19408.
214. Shen P. et al., 2024. Biodiversity buffers the response of spring leaf unfolding to climate warming. Nature Climate Change doi: 10.1038/s41558-024-02035-w
213. Yu Q. et al. Differential responses of soil phosphorus fractions to nitrogen and phosphorus fertilization: A global meta-analysis. Global Biogeochemical Cycles doi: 10.1029/2023GB008064.
211. Huang L, ... Yang YC*, Tang ZY*, Lindenmayer DB*. 2023. Human activities and species biological traits drive the long-term persistence of old trees in human-dominated landscapes. Nature Plants 9: 898–907.
210. Meng YY... Tang ZY*. 2023. Spatiotemporal patterns of planted forests on the Loess Plateau between 1986 and 2021 based on Landsat NDVI time-series analysis. GIScience & Remote Sensing 60: 2185980.
209. Amantai N. et al., 2023. Spatial–temporal patterns of interannual variability in planted forests: NPP time-series analysis on the Loess Plateau. Remote Sensing 15: 3380.
208. Amantai N. et al., 2023. Climate overtakes vegetation greening in regulating spatiotemporal patterns of soil moisture in arid Central Asia in recent 35 years. GIScience & Remote Sensing doi:10.1080/15481603.2023.2286744.
206. Cai Q. et al. 2023. Elevational Patterns of Tree Species Richness and Forest Biomass on Two Subtropical Mountains in China. Forests 14: 1337.
205. Chen X, et al. 2023. Comparison between the stem and leaf photosynthetic productivity in Eucalyptus urophylla plantations with different age. Planta 257:56.
204. Kang J, et al., 2023. Contrasting growth responses to drought in three tree species widely distributed in northern China. Science of the Total Environment.
203. Schuldt A, et al. 2023. Carbon–biodiversity relationships in a highly diverse subtropical forest. Global Change Biology doi: 10.1111/gcb.16697.
202. Tan C et al. 2023. Distribution and conservation of the Lauraceae in China, Global Ecology and Conservation doi:
201. Tao SL et al. 2023. A global long-term, high-resolution satellite radar backscatter data record (1992–2022C): merging C-band ERS/ASCAT and Ku-band QSCAT. Earth Syst. Sci. Data 15: 1577–1596.
200. Tao SL et al. 2023. Little evidence that Amazonian rainforests are approaching a tipping point. Nature Climate Change 13, pages1317–1320.
2022
199. Fang WJ, et al. 2022. Species richness patterns and determinants of larch forests in China. Plant Diversity 5: 436-444.
198. Ge JL, ..., Tang ZY*, Xie ZQ*. 2022. Depth-dependent controls over soil organic carbon stock across Chinese shrublands. Ecosystems doi: 10.1007/s10021-022-00757-6.
197. Liu TY, Ji CJ, Tang ZY. 2022. A semi-thin section technique based cell-level anatomical approach to quantify the xylem secondary cell wall deposition and lignification process. IAWA Journal
196. Meng YY, ..., Tang ZY*. 2022. A planted forest mapping method based on long-term change trend features derived from dense Landsat time series in an ecological restoration region. Remote Sensing 14: 961.
195. Wang QG, ... Tang ZY*. 2022. Ecolutionary history and climate conditions constrain the flower colours of woody plants in China. Journal of Plant Ecology 15: 196-207.
194. Weng XX, Guo YP, Tang ZY. 2022. Spatial-temporal dependence f the neighborhood interaction in regulating tree growth in a tropical rainforest. Forest Ecology and Management 508: 120032.
193. Zhang HT, ..., Tang ZY*. 2022. Environment shapes tree community traits in China's forests. Journal of Vegetation Sciences 33: e13146. doi:10.1111/jvs.13146.
192. Zhang YW, ..., Tang ZY*. 2022. Estimating community-level plant traits in a species rich alpine meadow using UAV image spectroscopy. Remote Sensing 14: 3399.
191. Cai GH et al. Plant-Derived lipids play a crucial role in forest soil carbon accumulation. Soil Biology and Biochemistry 168: 108645.
190. Feng YH, et al. Multispecies forest plantations outyield monocultures across a broad range of conditions. Science 376: 865-868.
189. Feng YH, et al. Decadal lake volume changes (2003-2020) and driving forces at a global scale. Remote Sensing 14: 1032.
188. Huang HY. et al. Effects of afforestation on soil microbial diversity and enzyme activity: a meta-analysis Geoderma 423: 115961.
187. Guo QH, et al. Human-climate coupled changes in vegetation community complexity of China since 1980s. Earth's Future doi: 10.1029/2021EF002553.
186. Liu YZ, et al. Classification and distribution of evergreen broad-leaved forests in Jiangxi, East China. Journal of Plant Ecology doi: 10.1093/jpe/rtac059.
185. Liu XQ, et al. Neutral network guided interpolation for mapping canopy height of China's forests by integrating GEDI and ICESat-2 data. Remote Sensing of Environment 269: 112844.
184. Ouyang M, et al. Moso bamboo (Phyllostachys edulis) invasion increases forest soil pH in subtropical China. Catena 215: 106339.
183. Satatini FM, et al., 2022. Global patterns of local plant species richness. Nature Communications 13: 4683.
182. Tian QX, et al. Vertical distribution of soil bacterial communities in different types along an elevation gradient. Microbial Ecology doi: 10.1007/s00248-021-01949-8.
181. Wang CC, et al. 2022. Wuling Mountains function as a corridor for woody plant species exchange between northern and southern Central China. Frontiers in Ecology and Evolution doi: 10.3389/fevo.2022.837738.
180. Xiong XY et al. 2022. Aboveground biomass and its biotic and abiotic modulators of a main food bamboo of the giant panda in an subalpine spruce-fir forest in southwestern China. Journal of Plant Ecology doi: 10.1093/jpe/rtab069.
179. Yang YH, et al. 2022. Terrestrial carbon sinks in China and around the world and their contribution to carbon neutrality. Science China Life Science doi: 10.1007/s11427-021-2045-5. (=杨元合等 2022. 陆地生态系统碳源汇特征及其对实现碳中和目标的贡献. 中国科学-生命科学)
178. Yu QS, et al. 2022. Foliar phosphorus allocation and photosynthesis reveal plants’ adaptative strategies to phosphorus limitation in tropical forests at different successional stages. Science of the Total Environment 846: 157456. doi: 10.1016/j.scitotenv.2022.157456
177. Zhang JH, et al. Nutrient resorption responses of plant life forms to nitrogen addion in temperate shrublands. Ecosphere 10.1002/ecs2.4113.
175. Feng YH, ..., Tang ZY*. 2021. Assessing the effectiveness of global protected areas based on the difference in differences model. Ecological Indicators 130: 108078.
174. Guo YP, ..., Tang ZY*. 2021. Environmental constraints on the inter-genus variation in the scaling relationship between leaf nitrogen and phosphorus concentrations. Journal of Plant Ecology 14: 616-627.
173. Gheyret G, ..., Tang ZY*. 2021. Radial growth response of trees to seasonal soil humidity in a subtropical forest. Basic and Applied Ecology 55: 74-86.
172. Li Y, Yan YJ, Tang ZY*,…, Yao YJ*. 2021. Conserving the Chinese caterpillar fungus under climate change. Biodiversity and Conservation 30: 547-550.
171. Zhang JH, ..., Tang ZY*. 2021. Responses of litter decomposition and nutrient dynamics to nitrogen addition to temperate shrublands of North China. Frontiers in Plant Sciences 11: 618675.
170. Zhang YW, Guo YP, Tang ZY* et al. 2021. Patterns of nitrogen and phosphorus pools in terrestrial ecosystems in China. Earth System Science Data 13: 5337-5351.
169. Cai HY, et al. 2021. Geographical patterns in phylogenetic diversity of Chinese woody plants and its application for conservation planning. Diversity and Distribution 27: 179-194.
168. Cai Q, et al. 2021. The relationship between niche breadth and range size of beech (Fagus) species worldwide. Journal of Biogeography 48: 1240-1253.
167. Feng YH, et al. 2021. Reduced resilience of terrestrial ecosystems locally is not reflected on a global scale. Communications Earth & Environment. 2: 88.
166. Ouyang M. et al. 2021. A field-based estimation of moso bamboo forest biomass in China. Forest Ecology and Management 505: 119885.
165. Schnabel F.,et al. 2021. Hydraulic diversity stabilizes productivity in a large scale subtropical tree diversity experiment. Science Advances 7: eabk1643.
164. Sun YF, et al. 2021. Global patterns and climatic drivers of above- and belowground net primary productivity in grasslands. Science China Life Sciences 64: 739-751.
163. Tian QX, et al. 2021. Soil pH and organic carbon properties drive soil bacterial communities in surface and deep layers along an elevational gradient. Frontiers in Microbiology 12: 646142.
162. Trogisch T, et al., 2021. The significance of tree-tree interactions for forest ecosystem functioning. Basic and Applied Ecology 55: 33-52.
161. Wang YP, et al., 2021. Allien woody plant invasions in natural forests across China. Journal of Plant Ecology 14: 749-756.
160. Yi SJ, et al. 2021. Biodiversity, environmental context and structural attributes as drivers of aboveground biomass in shrublands at the middle and lower reaches of the Yellow River Basin. Science of Total Environment 774: 145198.
157. Bai YH, …, Tang ZY⁎. 2020. Conservation status of Primulaceae, a plant family with high endemism, in China. Biological Conservation 248: 108675.
156. Fang WJ, ..., Tang ZY*, Fang JY*. 2020. The relationships among structure variables of larch forests in China. Forest Ecosystems 7: 61.
155. Ge JL, Xu WT, Liu Q, Tang ZY*, Xie ZQ*, 2020. Patterns and environmental controls of soil organic carbon density in Chinese shrublands. Geoderma 363: 114161.
154. Gheyret G, Guo YP, Fang JY, Tang ZY*. 2020. Latitudinal and elevational patterns of phylogenetic structure in forest communities in China’s mountains. Science China: Life Science 63: 1895-1904.
153. Gheyret G, Mohammat A, Tang ZY*. 2019. Elevational patterns of temperature and humidity in the middle Tianshan Mountain area in Central Asia. Journal of Moutain Science 12: 397-409.
152. Guo YP, …, Tang ZY*, 2020. The community-level scaling relationship between leaf nitrogen and phosphorus exhibits vegetation’s strategies for nutrient utilization. Journal of Ecology 108: 1276-1286.
151. Guo YP, …, Tang ZY*. 2020. Climate and biomass together control the vertical distribution of soil carbon, nitrogen and phosphorus in shrublands in China. Plant and Soil 456: 15-26.
150. Liu Z, Wang F*, Tang ZY*, Tang JT. 2020. Predictions and driving factors of production-based CO2 emissions in Beijing, China. Sustainable Cities and Society 53: 101909.
149. Zhang SY, …, Tang ZY⁎. 2020. Representativeness of threatened terrestrial vertebrates in nature reserves in China. Biological Conservation 246: 108599.
148. He NP, et al. 2020. Plant trait networks: improved resolution of the dimensionality of adaptation. Trends in Ecology & Evolution 35: 908-918.
147. Li YQ, et al. 2020. Leaf size of woody dicots predicts ecosystem primary productivity, Ecology Letters 23: 1003-1013.
146. Song SS, et al. 2020. Long-term grazing exclusion reduces species diversity but increases community heterogeneity in an alpine grassland. Frontiers in Ecology and Evolution 8: 66.
145. Su YJ, et al., 2020. An updated Vegetation Map of China (1:1000000). Science Bulletin 65: 1125-1136.
144. Zhu JX, et al., 2020. Increasing soil carbon stocks in eight permanent forest plots in China. Biogeosciences 17: 715-726.
136. Guo YP, …, Tang ZY*, 2019. Increasing water availability and facilitation weaken biodiversity–biomass relationships in shrublands. Ecology 100: e02624.
135. Yan YJ, Tang ZY*. 2019. Protecting endemic plants on the Tibetan Plateau under future climate change: migration matters. Journal of Plant Ecology 12: 962-971.
134. Zhang Q, ..., Tang ZY*, Xie ZQ*, 2019. C: N: P stoichiometry of Ericaceae species in shrubland biomes across Southern China: influences of climate, soil and species identity. Journal of Plant Ecology 12: 346-357.
133. Bruelheide H, et al. 2019. sPlot – a new tool for global vegetation analyses. Journal of Vegetation Sciences 30: 161-186.
132. Feng YH, et al. 2019. Changes in the trends of vegetation net primary productivity in China between 1982 and 2015. Environment Research Letters 14:124009.
131. He HL, et al. 2019. Altered trend in carbon uptake China's terrestrial ecosystems under the enhanced summer monsoon and warming hiatus.National Science Review 6: 505-514.
130. Tian D, et al. 2019. A global database of paired leaf nitrogen and phosphorus concentrations of terrestrial plants. Ecology 100: e02812.
129. Wang QG, et al. 2019. Analyzing tree neighborhood interactions in ecotones of montane evergreen and deciduous forests in China. Journal of Vegetation Sciencesm30: 654-663.
128. Xiao J, et al. 2019. Responses of four dominant dryland plant species to climate change in the Junggar Basin, north-west China. Ecology and Evolution 9: 13596-13607.
127. Zhang H, et al., 2019. High-resolution vegetation mapping using eXtreme Gradient Boosting based on extensive features. Remote Sensing 11: 1505.
124. Tang ZY#, Xu WT#, Zhou GY#, et al. 2018. Patterns of plant carbon, nitrogen, and phosphorus concentration in relation to productivity in China’s terrestrial ecosystems. PNAS 115: 4033-4038.
123. Tang XL#, Zhao X#, Bai YF#, Tang ZY#, et al. 2018. Carbon pools in China’s terrestrial ecosystems: new estimates based on an intensive field survey. PNAS 115: 4021-4026.
122. Bruelheide H, et al. 2018. Global trait-environment relationships of plant communities. Nature Ecology and Evolution 2: 1907-1918.
121. Chen SP, et al. 2018. Plant diversity enhances productivity and soil carbon storage. PNAS 115: 4027-4032.
120. Huang YY, et al., 2018. Strong impacts of biodiversity in a large-scale subtropical forest experiment. Science 362: 80-83.
119. Jiang ZH, et al. 2018. A trait-based approach reveals the importance of biotic filter on elevational herb richness pattern. Journal of Biogeography 45:2288–2298.
118. Liu XJ, et al. 2018. Tree species richness increases ecosystem carbon storage in subtropical forests. Proc. Royal Society B 285: 20181240.
117. Lu F, et al. 2018. The effects of national ecological restoration projects on carbon sequestration in China from 2001 to 2010. PNAS 115: 4039-4044.
116. Schuldt A, et al. 2018. Biodiversity across trophic levels drives multifunctionality in highly diverse forests. Nature Communications 9: 2989.
115. Shrestha N, et al. 2018. Global patterns of Rhododendron diversity: The role of evolutionary time and diversification rates. Global Ecology and Biogeography 27: 913-924.
114. Tian D, et al. 2018. Global leaf nitrogen and phosphorus stoichiometry and their scaling exponent. National Science Review 5: 728-739.
113. Zhang Q, et al. 2018. Nitrogen and phosphorus concentrations and allocation strategies among shrub organs: the effects of plant growth forms and nitrogen fixation type. Plant and Soil 427: 305-319.
112. Zhao H, et al. 2018. Spatial patterns and environmental factors influencing leaf carbon content in the forests and shrublands of China. Journal of Geographical Science 28: 791-801.
107. Chi XL, ..., Tang ZY*. 2017. Seasonal characteristic and determinants of tree growth in a Chinese subtropical forest. Journal of Plant Ecology 10: 4-12.
106. Chi XL, ..., Tang ZY*, Huang LQ*. 2017. Threatened medicinal plants in China: distributions and conservation priorities. Biological Conservation 210: 89-95.
105. Guo Q, ..., Tang ZY*. 2017. Asymemetric competition for light varies across functional groups. Journal of Plant Ecology 10: 74-80.
104. Guo YP,…, Tang ZY*. 2017. Legume shrubs are more nitrogen-homeostatic than non-legume shrubs. Frontiers in Plant Sciences 8: 1662.
103. Yan YJ, …, Tang ZY*, Yao YJ*. 2017. Range shifts in response to climate change of Ophiocordyceps sinensis, a fungus endemic to the Tibetan Plateau. Biological Conservation 206: 143-150.
102. Eigenbrod F#, Tang ZY#*, et al. 2017. Spatial covariance of ecosystem services and poverty in China. International J. Biodiversity Science, Ecosystem Services & Management 131: 422-433.
101. Cai Y, et al. 2017. Different composition and distribution patterns of mineral‐protected versus hydrolyzable lipids in shrubland soils. Journal of Geophysical Research- Biogeoscience 122: 2206-2218.
100. Eziz A, et al. 2017. Drought effect on plant biomass allocation: A meta-analysis. Ecology and Evolution 7: 11002-11010.
99. Wang SY, et al. 2017. Response of spatial vegetation distribution in China to climate changes since the Last Glacial Maximum (LGM). PLoS ONE 11: e0175742.
98. Yan ZB, et al. 2017. An assessment on the uncertainty of the nitrogen to phosphorus ratio as a threshold for nutrient limitation in plants. Annals of Botany 120: 937-942.
97. Zhu JX, et al. 2017. Carbon stocks and changes of dead organic matter in China`s forests. Nature Communications 8: 151.
91. Dallimer M#, Tang ZY#, et al. 2016. The extent of shifts in vegetation phenology between rural and urban areas within a human-dominated region. Ecology and Evolution 6: 1942-1953.
90. Yang X, …, Tang ZY*. 2016. Variations of leaf N, P concentrations in shrubland biomes across Northern China: phylogeny, climate and soil. Biogeosciences 13: 4429.
89. Castro-Izaguirre N, et al. 2016. Tree Diversity Enhances Stand Carbon Storage but Not Leaf Area in a Subtropical Forest. PLoS ONE 11: e0167771.
88. Lin L, et al. 2015. Range expansion and habitat shift trigered elevated diversification of the rice genus (Oriza, Poaceae) during the Pleistocene. BMC Evolutionary Biology 15: 182.
87. Tao SL, et al. 2016. Spatial scale and pattern dependences of aboveground biomass estimation from satellite images: a case study of the Sierra National Forest, California. Landscape Ecology 31: 1711-1723.
2015
86. Chi XL, Tang ZY*, et al. 2015. Effects of size, neighbors and site conditions on tree growth in a subtropical evergreen and deciduous broad-leaved mixed forest. Ecology and Evolution 5: 5149-5161.
85 Qiao XJ, Jabot F, Tang ZY*, et al. 2015. A latitudinal gradient in tree community assembly processes evidenced in forests of China. Global Ecology & Biogeography 24: 314-323.
84. Liu YN, Tang ZY*, et al. 2015. Contribution of environmental filtering and dispersal limitation to species turnover of temperate deciduous broadleaved forests in China. Applied Vegetation Science 18: 34-42.
83. Zhang JH, Tang ZY*, et al. 2015. Resorption efficiency of leaf nutrients in woody plants on Mt. Dongling of Beijing, Northern China. Journal of Plant Ecology 8: 530-538.
82. Zhang JH, …, Tang ZY*. 2015. Effects of nitrogen addition on nitrogen resorption in temperate shrublands in northern China. PLoS ONE 10: e0130434.
81. Zhang ZJ, …, Tang ZY*. 2015. Distribution and conservation of threatened plants in China. Biological Conservation 192: 454-460.
80. Zhang ZJ, …, Tang ZY*. 2015. Distribution and conservation of orchid species richness in China. Biological Conservation 181: 64-72.
79. Qiao XJ, et al. 2015. Beta diversity determinants in Badagongshan, a subtropical forest in central China. Scientific Reports 5: 17043.
78. Tao SL, et al. 2015. Rapid loss of lakes on the Mongolian Plateau. PNAS 112: 2281-2286.
77. Wu X, et al. 2015. The relationship between species richness and biomass changes from boreal to subtropical forests in China. Ecography 38: 602-613.
2014
76. Chi XL, Tang ZY*, Fang JY. 2014. Patterns of phylogenetic beta diversity in China’s grasslands in relation to geographic and environmental distances. Basic and Applied Ecology 15: 415-426.
75. Yang X, Tang ZY*, et al. 2014. Scaling of nitrogen and phosphorus across plant organs in shrubland biomes across Northern China. Scientific Reports 4: 5448.
2013
74. Yan YJ, Yang X, Tang ZY*. 2013. Patterns of species diversity and phylogenetic structure of vascular plants on the Qinghai-Tibetan Plateau. Ecology and Evolution 3: 4584-4595.
73. Barrufol M, et al. 2013. Biodiversity promotes tree growth during succession in subtropical forest. PLoS ONE 8: e 81246.
72. Chen YH, et al. 2013. Leaf nitrogen and phosphorus concentrations of woody plants differ in responses to climate, soil and plant growth form. Ecography 36: 178-184.
71. Li LP, et al. 2013. Species richness patterns and water-energy dynamics in the drylands of Northwest China. PLoS ONE 8: e66450.
68. Qiao XJ, Tang ZY*, et al. 2012. Effects of community structure on the species -area relationship in China’s forests. Ecography 35: 1117-1123.
67. Wang SP, Tang ZY*, et al. 2012. Influences of species pool and local processes on the taxonomic structure of woody plant communities in China’s mountains. Ecography 35: 1168-1175.
66. Tang ZY, et al. 2012. Patterns of plant beta-diversity along elevational and latitudinal gradients in mountain forests of China. Ecography 35: 1083-1091.
65. Tang ZY, et al. 2012. Geography, environment, and spatial turnover of species in China’s grasslands. Ecography 35: 1103-1109.
64. Fang JY, et al..2012. Forest community survey and the structural characteristics of forests in China. Ecography 35: 1059-1071.
63. Fang JY, et al. 2012. Multi-scale patterns of forest structure and species composition in relation to climate in northeast China. Ecography 35:1072-1082.
62. Fang JY, et al. 2012. Large-scale patterns of tree species richness and the metabolic theory of ecology. Global Ecology and Biogeography 21:508-512.
61. Qiao XJ, et al. 2012. What causes geographical variation in the species-area relationships? A test from forests in China. Ecography 35: 1110-1116.
60. Shen ZH, et al. 2012. Geographical patterns of community-based tree species richness in Chinese mountain forests: the effects of contemporary climate and regional history. Ecography 35: 1134-1146.
59. Wang XP, et al. 2012. Relative influence of regional species richness vs. local climate on local species richness in China’s forests. Ecography 35: 1176-1184.
58. Wang ZH, et al. 2012. Relative role of contemporary environment versus history in shaping diversity patterns of China’s woody plants. Ecography 35: 1124-1133.
57. Wang ZH, et al. 2012. Geographical patterns in the beta diversity of China’s woody plants: the influence of space, environment and range size. Ecography 35: 1192-1202.
2011
56. Dallimer M#, Tang ZY#, et al. 2011. Temporal changes in greenspace in a highly urbanized region. Biology Letters 7:763-766.
55. Tang ZY*, et al. 2011. Effectiveness of protected areas in maintaining plant production. PLoS ONE 6: e19116.
54. Shi L, et al. 2011. The changes in China’s forests: an analysis using the forest identity. PLoS ONE 6: e20778.
53. Wang ZH, et al. 2011. Patterns, determinants and models of woody plant diversity in China. Proc. Royal Society B-Biol. Sci. 278: 2122-132.
43. 方精云、王志恒、唐志尧. 中国木本植物分布图集. 北京: 高等教育出版社, 2010 【=Fang JY, Wang ZH, Tang ZY. Atlas of Woody Plants in China: Distribution and Climate. Higher Education Press -Springer. 2011.】(获中国出版政府奖-图书奖)
2009
42. Fang JY, et al. 2009. Scenario analysis on the global carbon emission reduction goal proposed in the declaration of the G8 Summit. Science in China D 52: 1694-1702. (方精云等. 2009. “八国集团”2009意大利峰会减排目标下的全球碳排放情景分析. 中国科学D辑 39: 1339-1346.)
41. Wang XP, et al. 2009. Relative importance of climate vs local factors in shaping the regional patterns of forest plant richness across northeast China. Ecography 32: 133-142.
40. Wang ZH, et al. 2009. Temperature dependence, spatial scale, and tree species diversity in eastern Asia and North America. PNAS 106: 13388-13392.
29. Walter GR, et al. 2007. Palms tracking climate change. Global Ecology and Biogeography 16: 801-809.
28. Wang ZH, et al. 2007. Altitudinal patterns of seed plant richness in the Gaoligong Mountains, southeast Tibet, China. Diversity and Distributions 13: 845-854.
27. Wu XP, et al. 2007. Land cover dynamics of different topographic conditions in Beijing, China. Frontiers in Biology in China 2: 463-473. (=吴晓莆等. 2006. 北京地区不同地形条件下的土地覆盖动态. 植物生态学报 30:239-251)
2006
26. Tang ZY, Wang ZH, Zheng CY, Fang JY. 2006. Biodiversity in China’s mountains. Frontiers in Ecology and the Environment 4: 347-352.
25. Tang ZY*, Fang JY. 2006. Temperature variation along the northern and southern slopes of Mt. Taibai, China. Agricultural and Forest Meteorology 139: 200-207.
24. Wang XP, et al. 2006. Climatic control of primary forest structure and DBH-height allometry in NE China. Forest Ecology and Management 234: 264-274.
23. Zhao SQ, et al. 2006. Ecological consequences of rapid urban expansion: Shanghai, China. Frontiers in Ecology and the Environment 4: 341-346.
22. Zhao SQ, et al. 2006. Patterns of fish species richness in China's lakes. Global Ecology and Biogeography 15: 386-394.
21. Zhao SQ, et al. 2006. The relationships between terrestrial vertebrate species richness in China's nature reserves and environmental variables. Canadian Journal of Zoology 84: 1368-1374.
20. Zhao SQ, et al. 2006. Relationships between species richness of vascular plants and terrestrial vertebrates in China: analyses based on data of nature reserves. Diversity and Distributions 12:189-194.
18. Zhao SQ, et al. 2005. The 7-Decade Degradation of a Large Freshwater Lake in Central Yangtze River, China. Environmental Science and Technology 39: 431-436.
12. Zhao SQ et al. 2003. Lake restoration from impoldering: impact of landcoversion on riparian landscape in Honghu Lake area, Central Yangtze. Agriculture, Ecosystems and Environment 95: 111-118.
4. Tang ZY et al. Landscape structures of Central Yangtze region, China. In "Proceedings of International Symposium on Remote Sensing 2000". Korea Society of Remote Sensing Publications, Seoul. pp 481-490.
1999
3. Cui HT, et al. 1999. Stability of alpine timberline ecotone on Taibai Mountain, China. Journal of Environmental Sciences 11: 207-210.