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清華大學核研院何向明老師組招鋰離子電池正極材料博后
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清華大學核研院何向明老師組招鋰離子電池正極材料博后,主要用原位XRD研究鋰電池失效機理,要求有正極材料研究基礎。師資力量雄厚,組內(nèi)有XRD、SEM、BET等大型儀器,待遇:30-40萬年薪+業(yè)績。歡迎加入! 有意向者請附簡歷發(fā)郵件至hongmliang@163.com。 實驗室簡介: 目前擁有清華大學昌平校區(qū)1000平米實驗基地、清華大學本部100平米實驗室,致力于新能源器件及其關鍵材料相關的工程科學問題研究,創(chuàng)新研究,及產(chǎn)業(yè)中的工程問題解決方案。發(fā)表論文400多篇,授權發(fā)明專利300多項。10多項成果實現(xiàn)了產(chǎn)業(yè)化。https://www.hexmgroup.com/About.Asp?Tid=2 實驗室面積充足,可滿足化學合成,材料合成,及臺架試驗。實驗室在充分利用清華大學儀器共享服務平臺的基礎上,實驗室還自購比表面積分析儀了BET、X射線衍射儀XRD、掃描電鏡SEM等大型儀器。近期還將采購實時紅外光譜儀、紫外可見光譜儀、石英晶體微天平、動態(tài)光散射儀、高倍激光光學顯微鏡、高壓物理吸附測試儀等大型儀器。 鋰離子電池實驗室2021年發(fā)表學術文章 2021年1-5月 1. Three-Dimensional Covalent Organic Framework with ceqTopology. J. Am. Chem. Soc. 2021, 143 (1), 92-96. 2. Lithium Metal Batteries Enabled by Synergetic Additives in CommercialCarbonate Electrolytes. ACS Energy Letters 2021, 6 (5),1839–1848. 3. Unlocking the self-supported thermal runaway ofhigh-energy lithium-ion batteries. Energy Storage Materials 2021. 4. Thermal-Responsive,Super-Strong, Ultrathin Firewalls for Quenching Thermal Runaway in High-EnergyBattery Modules. Energy Storage Materials 2021. 5. Investigating the Relationship between InternalShort Circuit and Thermal Runaway of Lithium-Ion Batteries under Thermal AbuseCondition. Energy Storage Materials 2021, 34, 563-573. 6. Development of cathode-electrolyte-interphase for safer lithium batteries.Energy Storage Materials 2021, 37 (5), 77-86. 7. Graphite as anode materials: Fundamental mechanism,recent progress and advances. Energy Storage Materials2021, 36,147-170. 8. Rational design of functional binder systems forhigh-energy lithium-based rechargeable batteries. Energy Storage Materials2021, 35, 353-377. 9. Thermal runawaymechanism of lithium-ion battery with LiNi0.8Mn0.1Co0.1O2 cathode materials. NanoEnergy2021, 85. 10. Benzophenone as indicator detecting lithium metal insidesolid state electrolyte. J. Power Sources 2021, 492, 229661. 11. Investigating the thermal runaway features oflithium-ion batteries using a thermal resistance network model. Appl.Energy 2021, 295. 12. From separator to membrane: separators can function morein lithium ion batteries. Electrochemistry Communications2021, 124. 13. A practical approach topredict volume deformation of lithium ion batteries from crystal structurechanges of electrode materials. Int J Energ Res 2021. 14. Unexpected facilitationof the pyrolysis products of potassium ferrocyanide to the electrocatalyticactivity of a PdO based palladium iron composite catalyst towards ethanoloxidation reaction (EOR). Int. J. Hydrog. Energy2021, 46 (1),633-644. 15. Anodic Stabilitiesof Various Metals as the Current Collector in High Concentration Electrolytesfor Lithium Batteries.J. Electrochem. Soc. 2021, 168 (3). 16. Investigation on Thermal Runaway of Li-Ion Cells Basedon LiNi1/3Mn1/3Co1/3O2.Journal of Electrochemical EnergyConversion and Storage 2021, 18 (3), 031001. 17. A review of lithium-ion battery safety concerns:the issues, strategies, and testing standards. J. Energy Chem.2021, 59,83-99. 18. Phosphorus-doped lithium- and manganese-rich layeredoxide cathode material for fast charging lithium-ion batteries.J.Energy Chem. 2021. 19. Internal short circuit evaluation andcorresponding failure mode analysis for lithium-ion batteries. J.Energy Chem. 2021, 61, 269-280. 20. Pry into the thermal andmechanical properties of electrolyte-soaked separators. Journal of the Taiwan Instituteof Chemical Engineers 2021, 119, 269-276. 21. Enhanced Structural Stability and ElectrochemicalPerformance of LiNi0.6Co0.2Mn0.2O2 Cathode Materials by Ga Doping. Materials2021, 14 (8). 22. Preparation and Electrochemical Properties ofLiNi2/3Co1/6Mn1/6O2 Cathode Material for Lithium-Ion Batteries. Materials2021, 14 (7). 23. Unexpected electocatalyticactivity of a micron-sized carbon sphere-graphene (MS-GR) supported palladiumcomposite catalyst for ethanol oxidation reaction (EOR). Mater. Chem. Phys. 2021,259. 24. PEObased polymer-ceramic hybrid solid electrolytes: a review. Nano Convergence 2021, 8(1), 2. |
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