工作人员
王林
- 职称:
研究员
- 专业:
地球化学
- 学历:
博士研究生
- 电话:
- Email:
wanglin@mail.gyig.ac.cn
- 地址:
贵州省贵阳市观山湖区林城西路99号
简历
1. 2025/3 – 今,中国科学院地球化学研究所,关键矿产成矿与预测全国重点实验室,研究员;
2. 2023/8 – 2025/3,德国拜罗伊特大学,巴伐利亚地球科学研究所,助理研究员;
3. 2020/9 – 2023/8,德国拜罗伊特大学,巴伐利亚地球科学研究所,博士后;
4. 2018/9 – 2020/9,美国卡内基研究所,地球和行星实验室,博士后;
5. 2012/11 – 2018/9,德国拜罗伊特大学,实验地球科学,博士;
2007/9 – 2011/07,合肥工业大学,资源勘查专业,学士
研究方向
承担科研项目情况
主持项目/课题
1. 国家自然科学基金优秀青年基金项目(海外),2026/01-2028/12,主持;
2. 中国科学院,“引才计划”B类项目,2025/01 – 2027/12,主持;
3. 卡内基博士后基金项目,2018/09 – 2020/09,主持;
4. 卡内基P2项目,下地幔矿物的结构和构造,2019/05 – 2020/05,主持;
参与项目/课题
1. 国家重点研发计划:地球早期圈层分异的实验与计算模拟研究,2024YFF0807500,高温高压实验重塑地球早期核幔分异的过程与机制,2024/12 – 2029/11,骨干;
2. 欧洲研究理事会项目(ERC),787527,下地幔动力学:布里奇曼石的化学和输运性质, 2018/10 – 2024/09;
3. 德国自然科学基金(DFG),KA3434/3-2,橄榄石的位错复原研究:水和结晶取向的作用, 2018/07 – 2021/06;
4. 德国自然科学基金(DFG),KA3434/3-1,橄榄石的位错复原研究:水和结晶取向的作用, 2013/04 – 2016/03;
社会任职
代表论著
1. Wang, L., Miyajima, N., Wang, F., & Katsura, T. 2025. Persistence of davemaoite at lower – mantle conditions. Nature Geoscience, 1 – 5.
2. Wang, L., Liu, Z., Koizumi, S., Ballaran, T. B., & Katsura, T. 2023. Aluminum components in bridgmanite coexisting with corundum and the CF‐Phase with temperature. Journal of Geophysical Research: Solid Earth, 128(1), e2022JB025739.
3. Wang, L., & Yingwei Fei., 2023. A partially equilibrated initial mantle and core indicated by stress – induced percolative core formation through a bridgmanite matrix. Science Advances 9(7): eade3010.
4. Wang, L., Chanyshev, A., Miyajima, N., Kawazoe, T., Blaha, S., Chang, J. and Katsura, T., 2022. Small effect of water incorporation on dislocation mobility in olivine: Negligible creep enhancement and water – induced fabric transition in the asthenosphere. Earth and Planetary Science Letters, 579, p.117360.
5. Wang, L., Miyajima, N., Kawazoe, T. and Katsura, T., 2019. Activation of [100](001) slip system by water incorporation in olivine and the cause of seismic anisotropy decrease with depth in the asthenosphere. American Mineralogist: Journal of Earth and Planetary Materials, 104(1), pp.47 – 52.
6. Wang, L., Blaha, S., Kawazoe, T., Miyajima, N. and Katsura, T., 2017. Identical activation volumes of dislocation mobility in the [100](010) and [001](010) slip systems in natural olivine. Geophysical Research Letters, 44(6), pp.2687 – 2692.
7. Wang, L., Blaha, S., Pintér, Z., Farla, R., Kawazoe, T., Miyajima, N., Michibayashi, K. and Katsura, T., 2016. Temperature dependence of [100](010) and [001](010) dislocation mobility in natural olivine. Earth and Planetary Science Letters, 441, pp.81 – 90.
8. Ishii, T., Shi, L., Huang, R., Tsujino, N., Druzhbin, D., Myhill, R., Li, Y., Wang, L., Yamamoto, T., Miyajima, N. and Kawazoe, T., 2016. Generation of pressures over 40 GPa using Kawai-type multi-anvil press with tungsten carbide anvils. Review of Scientific Instruments, 87(2), p.024501.
9. Ishii, T., Yamazaki, D., Tsujino, N., Xu, F., Liu, Z., Kawazoe, T., Yamamoto, T., Druzhbin, D., Wang, L., Higo, Y. and Tange, Y., 2017. Pressure generation to 65 GPa in a Kawai-type multi-anvil apparatus with tungsten carbide anvils. High Pressure Research, 37(4), pp.507-515.
10. Liu, Z., Nishi, M., Ishii, T., Fei, H., Miyajima, N., Ballaran, T.B., Ohfuji, H., Sakai, T., Wang, L., Shcheka, S. and Arimoto, T., 2017. Phase relations in the system MgSiO3‐Al2O3 up to 2300 K at lower mantle pressures. Journal of Geophysical Research: Solid Earth, 122(10), pp.7775-7788.
11. Ishii, T., Huang, R., Fei, H., Koemets, I., Liu, Z., Maeda, F., Yuan, L., Wang, L., Druzhbin, D., Yamamoto, T. and Bhat, S., 2018. Complete agreement of the post-spinel transition with the 660-km seismic discontinuity. Scientific reports, 8(1), pp.1-6.
12. Ishii, T., Huang, R., Myhill, R., Fei, H., Koemets, I., Liu, Z., Maeda, F., Yuan, L., Wang, L., Druzhbin, D. and Yamamoto, T., 2019. Sharp 660-km discontinuity controlled by extremely narrow binary post-spinel transition. Nature Geoscience, 12(10), pp.869-872.
13. Adams, D.J., Wang, L., Steinle-Neumann, G., Passerone, D. and Churakov, S.V., 2021. Anharmonic effects on the dynamics of solid aluminium from ab initio simulations. Journal of Physics: Condensed Matter, 33(17), p.175501.
14. Liu, Z., Fei, H., Chen, L., McCammon, C., Wang, L., Liu, R., Wang, F., Liu, B. and Katsura, T., 2021. Bridgmanite is nearly dry at the top of the lower mantle. Earth and Planetary Science Letters, 570, p.117088.
15. Shang, Y., Liu, Z., Dong, J., Yao, M., Yang, Z., Li, Q., Zhai, C., Shen, F., Hou, X., Wang, L., Zhang, N., Zhang, W., Fu, Rong., Ji, J., Zhang, X., Lin, H., Fei, Y. Sundqvist, B., Wang, W., Liu, B., 2021. Ultrahard bulk amorphous carbon from collapsed fullerene. Nature, 599(7886), pp.599-604.
16. Chanyshev, A., Ishii, T., Bondar, D., Bhat, S., Kim, E.J., Farla, R., Nishida, K., Liu, Z., Wang, L., Nakajima, A. and Yan, B., 2022. Depressed 660-km discontinuity caused by akimotoite–bridgmanite transition. Nature, pp.1-5.
17. Yin, Y., Wang, L., Zhai, S., & Fei, Y., 2022. Electrical Resistivity of Fe and Fe‐3 wt% P at 5 GPa With Implications for the Moon's Core Conductivity and Dynamo. Journal of Geophysical Research: Planets, 127(4), e2021JE007116.
18. Wang, F., Fei, H., Wang, L., McCammon, C., Frost, D. J., & Katsura, T., 2023. A decrease in the Fe3+/∑ Fe ratio of bridgmanite with temperature at the top of the lower mantle. Earth and Planetary Science Letters, 624, 118440.
19. Tang, H., Cheng, Y., Yuan, X., Zhang, K., Kurnosov, A., Chen, Z., Xiao, W., Jeppesen, H., Etter, M., Liang, Tao., Zeng, Zhidan., Wang, F., Fei, H., Wang, L., Han, S., Wang, M., Chen, G., Sheng, H., & Katsura, T., 2023. Toughening oxide glasses through paracrystallization. Nature materials, 22(10), 1189-1195.
20. Yin, Y., Wang, L., Zhai, S., & Liu, Y., 2024. Lorenz number and transport properties of Fe: Implications to the thermal conductivity at Earth’s core-mantle boundary. American Mineralogist, 109(11), 1850-1860.
21. Chanyshev, A., Martirosyan, N., Wang, L., Chakraborti, A., Purevjav, N., Wang, F., Kim, E. J., Tang, H., Fedotenko, T., Bhat, S., Farla, R., & Katsura, T., 2024. Thermal equation of state of cubic silicon carbide at high pressures. ChemPhysChem, 25(9), e202300604.
22. Wang, F., Wang, L., Fei, H., Miyajima, N., McCammon, C., Frost, D. J., & Katsura, T., 2025. Bridgmanite’s ferric iron content determined Earth’s oxidation state. Nature Geoscience, 1-5.
23. Miyajima, N., Wang, L., & Katsura, T., 2025. First observation of quenched davemaoite to ambient conditions: Its electron diffraction pattern. Geophysical Research Letters, 52(19), e2025GL115280.