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中国科学院青岛生物能源与过程研究所研究生导师简介-崔光磊

中国科学院 免费考研网/2016-03-24

姓 名:
 崔光磊 性 别:
 男
职 称:
 研究员 学 历:
 博士
电 话:
 ** 传 真:
 **
电子邮件:
 cuigl (AT) qibebt.ac.cn 个人主页:
 http://124.16.151.184:8083/web/25096/home
通讯地址:
 青岛市松岭路189号 266101

简历:
崔光磊,男,1973年生,博士,研究员,博士生导师,中科院“百人计划”入选者,山东省自然科学杰出青年基金获得者。2005年于中科院化学所获得有机化学博士学位,2005年9月至2009年2月先后在德国马普协会高分子所和固态所从事博士后研究。2009年2月起于中科院青岛生物能源与过程所工作。作为负责人和主要参与者承担国家973计划、863计划,国家自然科学基金面上项目,省部级及中科院先导专项、企业横向项目等多项科研项目。先后在材料、化学、能源材料等方面的国际权威杂志Angew. Chem. Int. Ed.、Adv. Mater.、Small、Energy Environ. Sci.、ChemSusChem、Chem. Commun.、J. Mater. Chem.发表相关论文60余篇,申请国家发明专利32项,已授权6项。主要从事低成本高效能源储存与转换器件的研究开发工作,是储能化学研究方向学术带头人。

研究方向:
能源化学

专家类别:
研究员;百人

职务:
仿生能源系统与储能团队负责人、能源应用技术中心党支部书记、青岛市太阳能与储能技术重点实验室主任

社会任职:


获奖及荣誉:
中科院“百人计划A类”、山东省杰出青年、第八届青岛市青年科技奖


承担科研项目情况:


代表论著:
1. Dong, S.; Chen, X.; Gu, L.; Zhou, X.; Li, L.; Liu, Z.; Han, P.; Xu, H.; Yao, J.; Wang, H.; Zhang, X.; Shang, C.; Cui, G.*; Chen, L. One dimensional MnO2/titanium nitride nanotube coaxial arrays for high performance electrochemical capacitive energy storage, Energy Environ. Sci., 2011, 4, 3502-3508.

2. Han, P.; Yue, Y.; Liu, Z.; Xu, W.; Zhang, L.; Xu, H.; Dong, S.; Cui, G.* Graphene oxide nanosheets/multi-walled carbon nanotubes hybrid as an excellent electrocatalytic material towards VO2+/VO2+ redox couples for vanadium redox flow batteries, Energy Environ. Sci., 2011, 4, 4710-4717.

3. Dong, S.; Chen, X.; Zhang, K.; Gu, L.; Zhang, L.; Zhou, X.; Li, L.; Liu, Z.; Han, P.; Xu, H.; Yao, J.; Zhang, C.; Zhang, X.; Shang, C.; Cui, G.*; Chen, L. Molybdenum nitride based hybrid cathode for rechargeable lithium–O2 batteries, Chem. Commun., 2011, 47, 11291–11293.

4. Zhang, K.; Wang, H.; He, X.; Liu, Z.; Wang, L.; Gu, L.; Xu, H.; Han, P.; Dong, S.; Zhang, C.; Yao, J.; Cui, G.*; Chen, L. A hybrid material of vanadium nitride and nitrogen-doped graphene for lithium storage, J. Mater. Chem., 2011, 21, 11916-11922.

5. Wang, H.; Zhang, C.; Liu, Z.; Wang, L.; Han, P.; Xu, H.; Zhang, K.; Dong, S.; Yao, J.; Cui, G.* Nitrogen-doped graphene nanosheets with excellent lithium storage properties, J. Mater. Chem., 2011, 21, 5430–5434.

6. Yue, Y.; Han, P.; He, X.; Zhang, K.; Liu, Z.; Zhang, C.; Dong, S.; Gu, L.; Cui, G.* In situ synthesis of a graphene/titanium nitride hybrid material with highly improved performance for lithium storage, J. Mater. Chem., 2012, 22, 4938–4943.

7. Han, P.; Yue,Y.; Zhang, L.; Xu, H.; Liu, Z.; Zhang, K.; Zhang, C.; Dong, S.; Ma, W.; Cui, G.* Nitrogen-doping of chemically reduced mesocarbon microbead oxide for the improved performance of lithium ion batteries, Carbon, 2012, 25, 1355-1362.

8. Han, P.; Wang, H.; Liu, Z.; Chen, X.; Ma, W.; Yao, J.; Zhu, Y.; Cui, G.* Graphene oxide nanoplatelets as excellent electrochemical active materials for VO2+/VO2+ and V2+/V3+ redox couples for a vanadium redox flow battery, Carbon, 2011, 49, 693-700.

9. Dong, S.; Chen, X.; Gu, L.; Zhou, X.; Xu, H.; Wang, H.; Liu, Z.; Han, P.; Yao, J.; Wang, L.; Cui, G.*; Chen, L. Facile Preparation of Mesoporous Titanium Nitride Microspheres for Electrochemical Energy Storage, ACS Appl. Mater. Interfaces, 2011, 3, 93–98.

10. Zhou, X.; Shang, C.; Gu, L.; Dong, S.; Chen, X.; Han, P.; Li, L.; Yao, J.; Liu, Z.; Xu, H.; Zhu, Y.; Cui, G.* Mesoporous Coaxial Titanium Nitride-Vanadium Nitride Fibers of Core_shell Structures for High-Performance Supercapacitors, ACS Appl. Mater. Interfaces, 2011, 3, 3058–3063.

11. Zhang, K.; Han, P.; Gu, L.; Zhang, L.; Liu, Z.; Kong, Q.; Zhang, C.; Dong, S.; Zhang, Z.; Yao, J.; Xu, H.; Cui, G*.; Chen, L. Synthesis of Nitrogen-Doped MnO/Graphene Nanosheets Hybrid Material for Lithium Ion Batteries, ACS Appl. Mater. Interfaces, 2012, 4, 658?664.

12. Zhang, C.; He, X.; Kong, Q.; Li, H.; Hu, H.; Wang, H.; Gu, L.; Wang, L.; Cui, G.*, Chen, L. A novel assembly of LiFePO4 microspheres from nanoplates, CrystEngComm, 2012, 14, 4344-4349.

13. Dong, S.; Chen, X.; Wang, S.; Gu, L.; Zhang, L.; Wang, X.; Zhou, X.; Liu, Z.; Han, P.; Duan, Y.; Xu, H.; Yao, J.; Zhang, C.; Zhang, K.; Cui, G.*; Chen, L. 1D Coaxial Platinum/Titanium Nitride Nanotube Arrays with Enhanced Electrocatalytic Activity for the Oxygen Reduction Reaction: Towards Li–Air Batteries, ChemSusChem, 2012, 5, 1712-1715.

14. Wang, S.; Dong, S.; Wang, J.; Zhang, L.; Han, P.; Zhang, C.; Wang, X.; Zhang, K.; Lan, Z.; Cui, G.* Oxygen-enriched carbon material for catalyzing oxygen reduction towards hybrid electrolyte Li-air battery, J. Mater. Chem., 2012, 22, 21051-21056.

15. Liu, Z.; Jiang, W.; Kong, Q.; Zhang, C.; Han, P.; Wang, X.; Yao, J.; Cui, G.* A core@sheath nanofibrous separator for lithium ion battery by coaxial electrospinning, Macromol. Mater. Eng., DOI: 10.1002/mame.**

16. Xu, G.; Zhang, L.; Guo, C.; Gu, L.; Wang, X.; Han, P.; Zhang, K.; Zhang, C.; Cui, G.* Manganese monoxide/titanium nitride composite as high performance anode material for rechargeable Li-ion batteries, Electrochim. Acta, 2012, 85, 345-351.

17. Cui, G.; Zhi, L.; Thomas, A.; Kolb, U.; Lieberwirth, I.; Müllen K. One-Dimensional Porous Carbon/Platinum Composites for Nanoscale Electrodes, Angew. Chem. Int. Ed., 2007, 46, 3464–3467.

18. Cui, G.*; Gu, L.; Zhi, L.; Kaskhedikar, N.; Aken, P. A.; Müllen, K.; Maier J. A Germanium–Carbon Nanocomposite Material for Lithium Batteries, Adv. Mater., 2008, 20, 3079–3083.

19. Cui, G.; Hu, Y.; Zhi, L.; Wu, D.; Lieberwirth, I.; Maier, J.; Müllen, K. A One-Step Approach Towards Carbon- Encapsulated Hollow Tin Nanoparticles and Their Application in Lithium Batteries, Small, 2007, 3, 2066–2069.

20. Cui, G.*; Gu, L.; Thomas, A.; Fu, L.; Aken, P. A. Antonietti, M.; Maier, J.* A Carbon/Titanium Vanadium Nitride Composite for Lithium Storage, ChemPhysChem, 2010, 11, 3219–3223.

21. Cui, G.; Zhi, L.; Thomas, A.; Lieberwirth, I.; Kolb, U.; Müllen, K.* A Novel Approach Towards Carbon–Ru Electrodes with Mesoporosity for Supercapacitors, ChemPhysChem, 2007, 8, 1013–1015.

22. Cui, G.*; Gu, L.; Kaskhedikar, N.; Aken, P. A.; Maier, J. A novel germanium/carbon nanotubes nanocomposite for lithium storage material, Electrochim. Acta, 2010, 55, 985–988.

23. Cui, G.; Xu, H.; Xu, W.; Yuan, G.; Zhang, D.; Jiang, L.; Zhu, D. Formation of helical superstructures from a semi-fluorinated alkoxysilane through a surface and solution self-assembly process, Chem. Commun., 2005, 277–278.
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