人才详细信息

姓名:昝金波
性别:
学历:博士
专家类别:研究员/杰青
电话:010-84097172
传真:010-8409 7079
电子邮箱:zanjb@itpcas.ac.cn
职称:研究员
通讯地址:北京市朝阳区林萃路16号院3号楼

简介

个人简介:

昝金波,中国科学院青藏高原研究所研究员,博士生导师。主要从事亚洲粉尘演化历史与全球变化关系的研究。迄今以第一或通讯作者在Nature Reviews Earth & Environment、PNAS、Nat. Commun.、ESR等杂志发表SCI论文30多篇。获批国家自然科学基金青年科学基金项目(A类),入选中国科学院青年创新促进会优秀会员,担任Geophysical Research Letters杂志Associate Editor (2023-)。 

教育背景:

2001.09–005.06,兰州大学资源环境学院,学士 

2005.09–2010.06,兰州大学西部环境与气候变化研究院,博士 

工作经历: 

2010.07–2013.06,中国科学院青藏高原研究所,博士后 

2012.10–2012.12,德国图宾根大学,访问学者 

2013.07–2018.12,中国科学院青藏高原研究所,副研究员 

2019.01—今,      中国科学院青藏高原研究所,研究员 

研究方向

粉尘沉积与全球变化 

职务

社会任职

承担项目

1. 国家自然科学基金青年科学基金项目(A类):粉尘沉积与环境效应(2026-2030)

2. 国家重点研发计划子课题:晚新生代古人类一古生物一古环境综合演化大数据研究(2023–2028)

3. 中国科学院青年创新促进会优秀会员人才项目(2021-2024)

4. 科技部第二次青藏科考项目:粉尘气溶胶及其气候环境效应子专题(2019–2024)

5. 国家自然科学基金面上项目:青藏高原东北缘临夏盆地新近纪风成沉积与古环境演变研究(2019–2022)

6.国家自然科学基金面上项目:西昆仑山黄土深钻晚上新世以来岩石磁学、地球化学记录与气候变化(2016–2019)

获奖及荣誉

代表论著

  1. Zan, J.B., Maher, B.A.*, Fang, X.M.*, Stevens, C., Ning, W.X., Wu, F.L., Yang, Y.B., Kang, J., Hu, Z., 2025. Global dust impacts on biogeochemical cycles and climate. Nature Reviews Earth & Environment. https://doi.org/10.1038/s43017-025-00734-2
  2. Zan, J.B.*, Louys, J.*, Dennell, R., Petraglia, M, Ning, W.X., Fang, X.M., Zhang, W.L., Hu, Z., 2024. Mid-Pleistocene aridity and landscape shifts promoted Palearctic hominin dispersals. Nature Communications, 15: 10279.
  3. Zan, J.B.*, Maher, B.A.*, Yamazaki, T., Fang, X.M., Han, W.X., Kang, J., Hu, Z., 2023. Mid-Pleistocene links between Asian dust, Tibetan glaciers, and Pacific iron fertilization. PNAS, 120: e2304773120.
  4. Zan, J.B.*, Fang, X.M., Kang, J., Li, X.J., Yan, M.D., 2020. Spatial and altitudinal variations in the magnetic properties of eolian deposits in the northern Tibetan Plateau and its adjacent regions: Implications for delineating the climatic boundary. Earth-Science Reviews, 208: 103271.
  5. Kang, J., Zan, J.B.*, Fang, X.M., Zhang, W.L., Azamdzhon, M., 2025. Amplified dust cycle in Central Asia linked to desert expansion and environmental transformations since 1980. Catena, 260: 109421.
  6. Hu, Z., Zan, J.B.*, Yang, Y.B., Ye, C.C., Fang, X.M., Wang, S.W., Ma, Z.Y., 2025. Continental erosion controls the geochemical, mineralogical and weathering trends of central North Pacific sediments. Global and Planetary Change, 255: 105051.
  7. Kang, J., Zan, J.B.*, Yang, S.L.*, Li, P.S., Liu, L., Fang, X.M., Zhang, W.L., Azamdzhon, M., 2025. Luminescence dating of three loess-paleosol sequences in the western Pamir Plateau and their paleoclimatic implications during the Late Pleistocene. Palaeogeography, Palaeoclimatology, Palaeoecology, 680: 113317.
  8. Ning, W.X., Zan, J.B.*, Fang, X.M., Kang, J., Wang, S.W., Hu, Z., 2025. Intensified glacial conditions drove the long-term decrease of the hematite content of Asian dust in an icehouse world. Palaeogeography, Palaeoclimatology, Palaeoecology, 666: 112834. 
  9. Wang, S.W., Zan, J.B.*, Heller, F., Fang, X.M., Liu, X.M., 2024. Dynamic coupling between intensified physical erosion and Asian dust activity under late Cenozoic global cooling. Geophysical Research Letters, 51: e2024GL110717.
  10. Ma, Z.Y., Zan, J.B.*, Fang, X.M., Wang, G.H., Zhang, W.L., Shen, M.H., 2024. Middle Pleistocene weakening of the Indian summer monsoon driven by global cooling. Global and Planetary Change, 241: 104550.
  11. Ma, Z.Y., Zan, J.B.*, Heller, F., Stevens, T., Xiao, X., Fang, X.M., Wang, G.H., Zhang, W.L., Shen, M.H., Zhang, Y.A., 2024. Mineralogical and magnetic variations of periglacial loess in SE Tibet reveal mid-Pleistocene expansion of Tibetan glacial activity. Quaternary Science Reviews, 330: 108592. 
  12. Han, W.X.*, Zan, J.B.*, Kemp, D.B., Zhang, T., Wang, Z.X., Mai, L., Fang, X.M., 2024. The influence of subpolar marine ice expansion on global climate in the Early Pleistocene. Npj Climate and Atmospheric Science, 7: 44.
  13. Ning, W.X., Zan, J.B.*, Heller, F., Fang, X.M., Zhang, Y.A., Zhang, W.L., Kang, J., Shen, M.M., 2023. Magnetic proxy of Eurasian loess revealing enhanced physical erosion since the Mid-Pleistocene transition. Geophysical Research Letters, 50: e2023GL104411.
  14. Khan, A.A., Zan, J.B.*, Fang, X.M., Zhang, W.L., Jadoon, U.F., 2023. Global warming drove the Mid-Miocene climate humidification in the northern Tibetan Plateau. Global and Planetary Change, 226: 104135.
  15. Zan, J.B.*, Ning, W.X., Heller, F., Fang, X.M.*, Zhang, W.L, Kang, J., 2022. Intensified northern hemisphere glaciation facilitates continuous accumulation of Late Pliocene loess on the western margin of the Pamir. Geophysical Research Letters, 49: e2022GL099629.
  16. Ning, W.X., Zan, J.B.*, Yang, S.L.*, Fang, X.M., Shen, M.M., Kang, J., Luo, Y.L., Wang, S.W., 2021. A combined rock magnetic and meteorological investigation of the precipitation boundary across the Tibetan Plateau. Geophysical Research Letters, 48: e2021GL094808.
  17. Zan, J.B.*, Li, X.J., Kang, J., Guo, Z.G., Mao, Z.Q., 2020. Intensified pedogenesis caused the increase in the fine particle content of late Cenozoic fluvial and lacustrine deposits in the NE Tibetan Plateau. Sedimentary Geology, 398: 105587.
  18. Li, X.J., Zan, J.B.*, Yang, R.S., Fang, X.M., Yang, S.L., 2020. Grain-size-dependent geochemical characteristics of Middle and Upper Pleistocene loess sequences from the Junggar Basin: Implications for the provenance of Chinese eolian deposits. Palaeogeography, Palaeoclimatology, Palaeoecology, 538: 109458.
  19. Kang, J., Zan, J.B.*, Bai, Y.*, Fang, X.M., Chen, C.H., Guan, C., Khodzhiev, A., 2020. Critical altitudinal shift from detrital to pedogenic origin of the magnetic properties of surface soils in the western Pamir Plateau, Tajikistan. Geochemistry, Geophysics, Geosystems, 21: e2019GC008752.
  20. Zan, J.B.*, Fang, X.M., Li, X.J., Yan, M.D., Kang, J., 2019. Long-term variations in the lithogenic susceptibility of Chinese eolian deposits since the Late Pliocene. Geophysical Research Letters, 46: 726-735. 
  21. Zan, J.B.*, Kang, J., Yan, M.D., Fang, X.M., Li, X.J., Guan, C., Zhang W. L., Fang, Y. H., 2018. A pedogenic model for the magnetic enhancement of late Miocene fluvial-lacustrine sediments from the Xining Basin, NE Tibetan Plateau. Journal of Geophysical Research: Solid Earth, 123: 6176-6194.
  22. Zan, J.B.*, Fang, X.M., Li, X.J., Zhang, W.L., Yan, M.D., Shen, M.M., 2018. Late Pliocene monsoonal rainfall gradients in western China recorded by the eolian deposits from the Linxia Basin, NE Tibetan Plateau. Journal of Geophysical Research: Atmospheres, 123: 8047-8061.
  23. Zan, J.B.*, Li, X.J., Fang, X.M., Zhang W. L., Yan, M.D., Mao, Z. Q., 2018. Grain-size analysis of Upper Pliocene red clay deposits from Linxia Basin: Implications for Asian monsoon evolution on the NE margin of the Tibetan Plateau. Palaeogeography, Palaeoclimatology, Palaeoecology, 511: 597-605.
  24. Zan, J.B., Fang, X.M.*, Zhang, W.L., Yan, M.D., Zhang, D.W., 2018. A new record of late Pliocene-early Pleistocene aeolian loess-red clay deposits from the western Chinese Loess Plateau and its palaeoenvironmental implications. Quaternary Science Reviews, 186: 17-26.
  25. Zan, J.B., Fang, X.M.*, Zhang, W.L., Yan, M.D., Zhang, T., 2016. Palaeoenvironmental and chronological constraints on the Early Pleistocene mammal fauna from loess deposits in the Linxia Basin, NE Tibetan Plateau. Quaternary Science Reviews, 148: 234-242.
  26. Zan, J.B.*, Fang, X.M., Yan, M.D., Zhang, W.L., Zhang, Z.G., 2015. Magnetic variations in surface soils in the NE Tibetan Plateau indicating the climatic boundary between the Westerly and East Asian summer monsoon regimes in NW China. Global and Planetary Change, 130: 1-6.
  27. Zan, J.B., Fang, X.M.*, Yan, M.D., Zhang, W.L., Lu, Y., 2015. Lithologic and rock magnetic evidence for the Mid-Miocene Climatic Optimum recorded in the sedimentary archive of the Xining Basin, NE Tibetan Plateau. Palaeogeography, Palaeoclimatology, Palaeoecology, 431: 6-14.
  28. Zan, J.B., Fang, X.M.*, Yang, S.L., Yan, M.D., 2015. Bulk particle size distribution and magnetic properties of particle-sized fractions from loess and paleosol samples in Central Asia. Geochemistry, Geophysics, Geosystems, 16:101-111.
  29. Zan, J.B., Fang, X.M.*, Nie, J.S., Yang, S.L., Song, C.H., Dai, S., 2011. Magnetic properties of surface soils across the southern Tarim Basin and their relationship with climate and source materials. Chinese Science Bulletin, 56: 290-296.
  30. Zan, J.B., Fang, X.M.*, Yang, S.L., Nie, J.S., Li, X.Y., 2010. A rock magnetic study of loess from the West Kunlun Mountains. Journal of Geophysical Research: Solid Earth, 115: B10101.