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[专家学者] 哈尔滨工业大学化工与化学学院左朋建

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发表于 2019-7-26 16:55:11 | 只看该作者 回帖奖励 |倒序浏览 |阅读模式
左朋建,教授,博士生导师,哈尔滨工业大学化工与化学学院 电化学工程系/电源所。研究方向为锂离子电池、钠离子电池及锂硫电池等新型轻金属二次电池关键材料与器件。多年来紧密围绕化学电源工程应用的卡脖子技术问题,在高性能电池材料研发及新型电池研制方面成果显著,承担国家自然科学基金、军委装备发展部共性技术、国家重点研发计划、民用航天预先研究项目、省应用技术研发计划重大项目等多个国家和省部级科研项目,发表SCI论文130余篇,申请和授权国家发明专利30余项,获省科技一等奖2项,参编《化学电源》和《电池辞典》等著作。任教育部首批党建双创工作样板支部——化工与化学学院特种化学电源研究所师生联合党支部书记,曾获哈尔滨工业大学“优秀党务工作者”、“优秀思想政治工作者”等荣誉称号。


教师姓名 左朋建
职位/职称 教授/博导
所属学科 电化学
研究方向 化学电源、新能源材料
联系方式
电  话:0451-86413721
E-mail:zuopj@hit.edu.cn
办公地址:明德楼C1213
通讯地址:哈尔滨工业大学明德楼C1213
邮政编码:150001

工作经历
2017-今 哈尔滨工业大学 化工与化学学院 教授
2013-今 哈尔滨工业大学 化工与化学学院 博士生导师
2007-2017 哈尔滨工业大学 化工学院 讲师/副教授
2017.3-4 美国布鲁克海文国家实验室(BNL) 访问学者
2012-2013 美国西北太平洋国家实验室(PNNL) 访问学者
2007-2012 哈尔滨工业大学特种陶瓷研究所 博士后

教育经历
1998-2002 哈尔滨工业大学 电化学 工学学士
2002-2007 哈尔滨工业大学 化学工程与技术 硕士、博士

[1] Xie, B.; Zuo, P.;Wang, L.; Wang, J.; Huo, H.; He, M.; Shu, J.; Li, H.; Lou, S.; Yin, G.,Achieving long-life Prussian blue analogue cathode for Na-ion batteries viatriple-cation lattice substitution and coordinated water capture. Nano Energy2019, 61, 201-210.
[2] Cao, Y.; Zuo, P.; Lou,S.; Sun, Z.; Li, Q.; Huo, H.; Ma, Y.; Du, C.; Gao, Y.; Yin, G., Aquasi-solid-state Li–S battery with high energy density, superior stability and safety.Journal of Materials Chemistry A 2019, 7 (11), 6533-6542.
[3] Ma, S.; Zuo, P.; Zhang,H.; Yu, Z.; Cui, C.; He, M.; Yin, G., Iodine-doped sulfurized polyacrylonitrilewith enhanced electrochemical performance for room-temperature sodium/potassiumsulfur batteries. Chem Commun 2019. https://doi.org/10.1039/c9cc01612k
[4] Ma, S.; Wang, L.; Wang, Y.; Zuo,P.; He, M.; Zhang, H.; Ma, L.; Wu, T.; Yin, G., Palladiumnanocrystals-imbedded mesoporous hollow carbon spheres with enhancedelectrochemical kinetics for high performance lithium sulfur batteries. Carbon2019, 143, 878-889.
[5] Li, Y.; Zuo, P.; Li,R.; He, M.; Ma, Y.; Shi, Y.; Cheng, X.; Du, C.; Yin, G.,Electrochemically-driven interphase conditioning of magnesium electrode formagnesium sulfur batteries. Journal of Energy Chemistry 2019, 37, 215-219.
[6] He, X.; Xu, X.; Wang, L.; Du, C.;Cheng, X.; Zuo, P.; Ma, Y.; Yin, G., Enhanced ElectrochemicalPerformance of LiNi0.8Co0.15Al0.05O2 Cathode Material via Li2TiO3 NanoparticlesCoating. Journal of the Electrochemical Society 2019, 166 (2), A143-A150.
[7] He, X.; Han, G.; Lou, S.; Du, L.;Xu, X.; Du, C.; Cheng, X.; Zuo, P.; Ma, Y.; Huo, H.; Yin, G.,Improved Electrochemical Performance of LiNi0.8Co0.15Al0.05O2 Cathode Materialby Coating of Graphene Nanodots. Journal of the Electrochemical Society 2019,166 (6), A1038-A1044.
[8] Geng, T.; Du, C.; Cheng, X.; Xu,X.; Jian, J.; He, X.; Zuo, P.; Yin, G., A multifunctionalsilicotungstic acid-modified Li-rich manganese-based cathode material withexcellent electrochemical properties. Journal of Solid State Electrochemistry2019, 23 (1), 101-108.
[9] Fan, P.; Mu, T.; Lou, S.; Cheng,X.; Gao, Y.; Du, C.; Zuo, P.; Ma, Y.; Yin, G., Amorphouscarbon-encapsulated Si nanoparticles loading on MCMB with sandwich structurefor lithium ion batteries. Electrochimica Acta 2019, 306, 590-598.
[10] Mu, T.; Zuo, P.; Lou, S.;Pan, Q.; Zhang, H.; Du, C.; Gao, Y.; Cheng, X.; Ma, Y.; Huo, H.; Yin, G., Athree-dimensional silicon/nitrogen-doped graphitized carbon composite ashigh-performance anode material for lithium ion batteries. Journal of Alloysand Compounds 2019, 777, 190-197.
[11] Zhou, X.; Liu, Y.; Du, C.; Ren, Y.;Mu, T.; Zuo, P.; Yin, G.; Ma, Y.; Cheng, X.; Gao, Y.,Polyaniline-encapsulated silicon on three-dimensional carbon nanotubes foamwith enhanced electrochemical performance for lithium-ion batteries. Journal ofPower Sources 2018, 381, 156-163.
[12] Zhou, X.; Liu, Y.; Du, C.; Ren, Y.;Li, X.; Zuo, P.; Yin, G.; Ma, Y.; Cheng, X.; Gao, Y., Free-StandingSandwich-Type Graphene/Nanocellulose/Silicon Laminar Anode for FlexibleRechargeable Lithium Ion Batteries. ACS applied materials & interfaces2018, 10 (35), 29638-29646.
[13] Zhang, H.; Wang, L.; Li, Q.; Ma, L.;Wu, T.; Ma, Y.; Wang, J.; Du, C.; Yin, G.; Zuo, P., Cobaltnanoparticle-encapsulated carbon nanowire arrays: Enabling the fast redoxreaction kinetics of lithium-sulfur batteries. Carbon 2018, 140, 385-393.
[14] Yang, J.; Du, C.; Wang, T.; Gao, Y.;Cheng, X.; Zuo, P.; Ma, Y.; Wang, J.; Yin, G.; Xie, J.; Lei, B.,Rapid Prediction of the Open-Circuit-Voltage of Lithium Ion Batteries Based onan Effective Voltage Relaxation Model. Energies 2018, 11 (12).
[15] Wu, X.; Lou, S.; Cheng, X.; Lin, C.;Gao, J.; Ma, Y.; Zuo, P.; Du, C.; Gao, Y.; Yin, G., Unravelling theInterface Layer Formation and Gas Evolution/Suppression on a TiNb2O7 Anode forLithium-Ion Batteries. ACS applied materials & interfaces 2018, 10 (32),27056-27062.
[16] Wang, L.; Zhang, H.; Liu, Q.; Wang,J.; Ren, Y.; Zhang, X.; Yin, G.; Wang, J.; Zuo, P., ModifyingHigh-Voltage Olivine-Type LiMnPO4 Cathode via Mg Substitution inHigh-Orientation Crystal. ACS Applied Energy Materials 2018, 1 (11), 5928-5935.
[17] Wang, L.; Wang, J.; Zuo, P.,Probing Battery Electrochemistry with In Operando Synchrotron X-Ray ImagingTechniques. Small Methods 2018, 2 (8).
[18] Wang, L.; Wang, J.; Guo, F.; Ma, L.; Ren,Y.; Wu, T.; Zuo, P.; Yin, G.; Wang, J., Understanding the initialirreversibility of metal sulfides for sodium-ion batteries via operandotechniques. Nano Energy 2018, 43, 184-191.
[19] Sun, S.; Guan, T.; Zuo, P.;Gao, Y.; Cheng, X.; Du, C.; Yin, G., Accelerated Aging Analysis on Cycle Lifeof LiFePO4/Graphite Batteries Based on Different Rates. Chemelectrochem 2018, 5(16), 2301-2309.
[20] Qian, Z.; Sun, B.; Du, L.; Lou, S.;Du, C.; Zuo, P.; Ma, Y.; Cheng, X.; Gao, Y.; Yin, G., Insights intothe role of oxygen functional groups and defects in the rechargeable nonaqueousLi-O-2 batteries. Electrochimica Acta 2018, 292, 838-845.
[21] Pei, H.; Guo, R.; Guo, W.; Liu, W.;Li, Y.; Xie, J.; Zuo, P.; Yu, S., Sulfur nanoparticles/disorderedmesoporous carbon composite based on nanotemplates in-situ transformationroute. Chemical Physics Letters 2018, 706, 133-139.
[22] Pan, Q.; Lou, S.; Zuo, P.;Mu, T.; Du, C.; Cheng, X.; Ma, Y.; Gao, Y.; Yin, G., Toward Promising Turnkey Solutionfor Next-Generation Lithium Ion Batteries: Scale Preparation, Fading Analysis,and Enhanced Performance of Microsized Si/C Composites. Acs Applied EnergyMaterials 2018, 1 (12), 6977-6985.
[23] Mu, T.; Zuo, P.; Lou, S.;Pan, Q.; Li, Q.; Du, C.; Gao, Y.; Cheng, X.; Ma, Y.; Yin, G., A two-dimensionalnitrogen-rich carbon/silicon composite as high performance anode material forlithium ion batteries. Chemical Engineering Journal 2018, 341, 37-46.
[24] Ma, Y.; Zhou, Z.; Li, C.; Wang, L.;Wang, Y.; Cheng, X.; Zuo, P.; Du, C.; Huo, H.; Gao, Y.; Yin, G.,Enabling reliable lithium metal batteries by a bifunctional anionic electrolyteadditive. Energy Storage Materials 2018, 11, 197-204.
[25] Lou, S.; Zhang, H.; Guo, J.; Ma, Y.;Li, C.; Huo, H.; Zuo, P.; Yin, G., A porous N-doped carbonaggregate as sulfur host for lithium-sulfur batteries. Ionics 2018.
[26] Lou, S.; Ma, Y.; Zhou, Z.; Huo,H.; Zuo, P.; Cheng, X.; Qu, X.; Gao, Y.; Du, C.; Yin, G.,Unravelling the Enhanced High-Temperature Performance of Lithium-Rich OxideCathode with Methyl Diphenylphosphinite as Electrolyte Additive.Chemelectrochem 2018, 5 (12), 1569-1575.
[27] Lou, S.; Cheng, X.; Gao, J.; Li, Q.;Wang, L.; Cao, Y.; Ma, Y.; Zuo, P.; Gao, Y.; Du, C.; Huo, H.; Yin,G., Pseudocapacitive Li+ intercalation in porous Ti2Nb10O29 nanospheres enablesultra-fast lithium storage. Energy Storage Materials 2018, 11, 57-66.
[28] Li, C.; Qian, Z.; Ma, Y.; Zuo,P.; Du, C.; Huo, H.; Yin, G., Bifunctional electrolyte additive KI toimprove the cycling performance of Li-O-2 batteries. New Journal of Chemistry2018, 42 (21), 17311-17316.
[29] He, M.; Zuo, P.*; Zhang,H.; Hua, J.; Ma, Y.; Du, C.; Cheng, X.; Gao, Y.; Yin, G., Polymericmultilayer-modified manganese dioxide with hollow porous structure as sulfurhost for lithium sulfur batteries. Electrochimica Acta 2018, 259, 440-448.
[30] Guan, T.; Sun, S.; Yu, F.; Gao, Y.;Fan, P.; Zuo, P.; Du, C.; Yin, G., The degradation ofLiCoO2/graphite batteries at different rates. Electrochimica Acta 2018, 279,204-212.
[31] Fu, C.; Lou, S.; Cao, Y.; Ma, Y.; Du,C.; Zuo, P.; Cheng, X.; Tang, W.; Wu, Y.; Gao, Y.; Huo, H.; Yin,G., Excellent room-temperature performance of lithium metal polymer batterywith enhanced interfacial compatibility. Electrochimica Acta 2018, 283, 1261-1268.
[32] Cui, Y.; Zuo, P.; Du, C.;Gao, Y.; Yang, J.; Cheng, X.; Ma, Y.; Yin, G., State of health diagnosis modelfor lithium ion batteries based on real-time impedance and open circuit voltageparameters identification method. Energy 2018, 144, 647-656.
[33] Zuo, P.*; Zhang, H.; He,M.; Li, Q.; Ma, Y.; Du, C.; Cheng, X.; Huo, H.; Gao, Y.; Yin, G., Clew-likeN-doped multiwalled carbon nanotube aggregates derived from metal-organiccomplexes for lithium-sulfur batteries. Carbon 2017, 122, 635-642.
[34] Zuo, P.*; Hua, J.; He, M.;Zhang H.; Qiang Z.; Ma, Y.; Du, C.; Cheng, X.; Gao, Y.; Yin, G. FacilitatingRedox Reaction of Polysulfides by An Electrocatalytic Layer-modified Separatorfor Lithium Sulfur Batteries. Journal of Materials Chemistry A 2017, 5,10936-10945.
[35] Wang, L.; Wang, J.; Zhang, X.; Ren,Y.; Zuo, P.*; Yin, G.; Wang, J.* Unravelling the origin ofirreversible capacity loss in NaNiO2 for high voltage sodium ion batteries.Nano Energy 2017, 34, 215-223.
[36] Shen, B.; Zuo, P.*; Li,Q.; He, X.; Yin, G.*; Ma, Y.; Cheng, X.; Du, C.; Gao, Y. Lithium Cobalt OxidesFunctionalized by Conductive Al-doped ZnO Coating as Cathode forHigh-performance Lithium Ion Batteries. Electrochimica Acta 2017, 224, 96-104.
[37] Pan, Q.; Zuo, P.*; Mu, T.;Du, C.; Cheng, X.; Ma, Y.; Gao, Y.; Yin, G.* Improved electrochemicalperformance of micro-sized SiO-based composite anode by prelithiation ofstabilized lithium metal powder. Journal of Power Sources 2017, 347, 170-177.
[38] Lou, S.; Cheng, X.; Zhao, Y.;Lushington, A.; Gao, J.; Li, Q.; Zuo, P.; Wang, B.; Gao, Y.; Ma,Y.; Du, C.; Yin, G.*; Sun, X.* Superior performance of ordered macroporousTiNb2O7 anodes for lithium ion batteries: Understanding from the structural andpseudocapacitive insights on achieving high rate capability. Nano Energy 2017,34, 15-25.
[39] Zuo, P.*; Zhang, W.; Hua,J.; Ma, Y.; Du, C.; Cheng, X.; Gao, Y.; Yin, G. A Novel One-dimensional ReducedGraphene Oxide/Sulfur Nanoscroll Material and its Application in Lithium SulfurBatteries. Electrochimica Acta 2016, 222, 1861-1869.
[40] Zhou, Z.; Ma, Y.; Wang, L.; Zuo,P.; Cheng, X.; Du, C.; Yin, G.; Gao, Y. Triphenyl phosphite as anelectrolyte additive to improve the cyclic stability of lithium-rich layeredoxide cathode for lithium-ion batteries. Electrochimica Acta 2016, 216, 44-50.
[41] Zhang, W.; Zuo, P.*; Chen,C.; Ma, Y.; Cheng, X.; Du, C.; Gao, Y.; Yin, G. Facile synthesis of binder-freereduced graphene oxide/silicon anode for high-performance lithium ionbatteries. Journal of Power Sources 2016, 312, 216-222.
[42] Wang, Z.; Zuo, P.; Fan,L.; Han, J.; Xiong, Y.; Yin, G. Facile electrospinning preparation ofphosphorus and nitrogen dual-doped cobalt-based carbon nanofibers asbifunctional electrocatalyst. Journal of Power Sources 2016, 311, 68-80.
[43] Shen, B.; Zuo, P.; Fan,P.; Yang, J.; Yin, G.; Ma, Y.; Cheng, X.; Du, C.; Gao, Y. Improvedelectrochemical performance of NaAlO2-coated LiCoO2 for lithium-ion batteries.Journal of Solid State Electrochemistry 2016, 1-7.
[44] Liu, Q.; Du, C.; Shen, B.; Zuo,P.; Cheng, X.; Ma, Y.; Yin, G.; Gao, Y. Understanding undesirable anodelithium plating issues in lithium-ion batteries. Rsc Advances 2016, 6,88683-88700.
[45] Zhang, L.; Cheng, X.; Ma, Y.; Guan,T.; Sun, S.; Cui, Y.; Du, C.; Zuo, P.; Gao, Y.; Yin, G., Effect ofshort-time external short circuiting on the capacity fading mechanism duringlong-term cycling of LiCoO2/mesocarbon microbeads battery. Journal of PowerSources 2016, 318, 154-162.
[46] Guan, T.; Sun, S.; Gao, Y.; Du,C.; Zuo, P.; Cui, Y.; Zhang, L.; Yin, G., The effect of elevatedtemperature on the accelerated aging of LiCoO2/mesocarbon microbeads batteries.Applied Energy 2016, 177, 1-10.
[47] Cui, Y.; Du, C.; Gao, Y.; Yang, J.;Zhang, L.; Guan, T.; Yang, L.; Cheng, X.; Zuo, P.; Ma, Y.; Yin, G.,Recovery Strategy and Mechanism of Aged Lithium Ion Batteries after ShallowDepth of Discharge at Elevated Temperature. ACS applied materials &interfaces 2016, 8 (8), 5234-5242.
[48] Zuo, P.; Wang, L.; Zhang,W.; Yin, G.; Ma, Y.; Du, C.; Cheng, X.; Gao, Y. A novel nanoporous Fe-dopedlithium manganese phosphate material with superior long-term cycling stabilityfor lithium-ion batteries. Nanoscale 2015, 7, 11509-11514.
[49] Wang, L.; Zuo, P.; Yin,G.; Ma, Y.; Cheng, X.; Du, C.; Gao, Y. Improved electrochemical performance andcapacity fading mechanism of nano-sized LiMn0.9Fe0.1PO4 cathode modified bypolyacene coating. Journal of Materials Chemistry A 2015, 3, 1569-1579.
[50] Lou, S.; Shen, B.; Zuo, P.;Yin, G.; Yang, L.; Ma, Y.; Cheng, X.; Du, C.; Gao, Y. Electrochemicalperformance degeneration mechanism of LiCoO2 with high state of charge duringlong-term charge/discharge cycling. RSC Advances 2015, 5, 81235-81242.
[51] Cheng, G.; Zuo, P.; Wang,L.; Shi, W.; Ma, Y.; Du, C.; Cheng, X.; Gao, Y.; Yin, G. High-performancecarbon-coated LiMnPO4 nanocomposites by facile two-step solid-state synthesisfor lithium-ion battery. Journal of Solid State Electrochemistry 2015, 19,281-288.
[52] Zhang, L.; Ma, Y.; Cheng, X.; Du, C.;Guan, T.; Cui, Y.; Sun, S.; Zuo, P.; Gao, Y.; Yin, G., Capacityfading mechanism during long-term cycling of over-discharged LiCoO2/mesocarbonmicrobeads battery. Journal of Power Sources 2015, 293, 1006-1015.
[53] Zhang, L.; Ma, Y.; Cheng, X.; Zuo,P.; Cui, Y.; Guan, T.; Du, C.; Gao, Y.; Yin, G., Enhancement of highvoltage cycling performance and thermal stability of LiNi1/3Co1/3Mn1/3O2cathode by use of boron-based additives. Solid State Ionics 2014, 263, 146-151.
[54] Zheng, J.; Xiao, J.; Gu, M.; Zuo,P.; Wang, C.; Zhang, J.-G. Interface modifications by anion receptors forhigh energy lithium ion batteries. Journal of Power Sources 2014, 250, 313-318.
[55] Shao, Y.; Gu, M.; Li, X.; Nie,Z.; Zuo, P.; Li, G.; Liu, T.; Xiao, J.; Cheng, Y.; Wang, C.; Zhang,J.-G.; Liu, J. Highly Reversible Mg Insertion in Nanostructured Bi for Mg IonBatteries. Nano Letters 2014, 14, 255-260.
[56] Guan, T.; Zuo, P.; Sun,S.; Du, C.; Zhang, L.; Cui, Y.; Yang, L.; Gao, Y.; Yin, G.; Wang, F.Degradation mechanism of LiCoO2/mesocarbon microbeads battery based onaccelerated aging tests. Journal of Power Sources 2014, 268, 816-823.
[57] Yang, L.; Cheng, X.; Gao, Y.; Zuo,P.; Ma, Y.; Du, C.; Shen, B.; Cui, Y.; Guan, T.; Yin, G., Lithium CompoundDeposition on Mesocarbon Microbead Anode of Lithium Ion Batteries afterLong-Term Cycling. ACS applied materials & interfaces 2014, 6 (15),12962-12970.
[58] Yang, L.; Cheng, X.; Gao, Y.; Ma,Y.; Zuo, P.; Du, C.; Cui, Y.; Guan, T.; Lou, S.; Wang, F.; Fei, W.;Yin, G., Lithium deposition on graphite anode during long-term cycles and theeffect on capacity loss. Rsc Advances 2014, 4 (50), 26335-26341.
[59] Zuo, P.; Wang, T.; Cheng,G.; Du, C.; Ma, Y.; Cheng, X.; Yin, G. Improved electrochemical performance ofnano-crystalline Li2FeSiO4/C cathode material prepared by the optimization ofsintering temperature. Journal of Solid State Electrochemistry 2013, 17,1955-1959.
[60] Zuo, P.; Cheng, G.; Wang,L.; Ma, Y.; Du, C.; Cheng, X.; Wang, Z.; Yin, G. Ascorbic acid-assistedsolvothermal synthesis of LiMn0.9Fe0.1PO4/C nanoplatelets with enhancedelectrochemical performance for lithium ion batteries. Journal of Power Sources2013, 243, 872-879.
[61] Zheng, J.; Gu, M.; Xiao, J.; Zuo,P.; Wang, C.; Zhang, J.-G. Corrosion/Fragmentation of Layered CompositeCathode and Related Capacity/Voltage Fading during Cycling Process. NanoLetters 2013, 13, 3824-3830.
[62] Zheng, J.; Gu, M.; Wang, C.; Zuo,P.; Koech, P. K.; Zhang, J.-G.; Liu, J.; Xiao, J. Controlled Nucleation andGrowth Process of Li2S2/Li2S in Lithium-Sulfur Batteries. Journal of theElectrochemical Society 2013, 160, A1992-A1996.
[63] Zheng, J.; Gu, M.; Wang, C.; Zuo,P.; Koech, P. K.; Zhang, J. G.; Liu, J.; Xiao, J. Controlled Nucleation andGrowth Process of Li2S2/Li2S in Lithium-Sulfur Batteries. Journal of the ElectrochemicalSociety 2013, 160, A1992-A1996.
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[65] Fang, W.; Zuo, P.; Ma, Y.;Cheng, X.; Liao, L.; Yin, G. Facile preparation of Li4Ti5O12/AB/MWCNTscomposite with high-rate performance for lithium ion battery. ElectrochimicaActa 2013, 94, 294-299.
[66] Fang, W.; Ma, Y.; Zuo, P.;Cheng, X.; Yin, G. Nano-Li4Ti5O12 Pore Microspheres: A High Power ElectrodeMaterial for Lithium Ion Batteries. International Journal of ElectrochemicalScience 2013, 8, 1949-1956.
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[69] Liao, L.; Zuo, P.; Ma, Y.;An, Y.; Yin, G.; Gao, Y. Effects of fluoroethylene carbonate on low temperatureperformance of mesocarbon microbeads anode. Electrochimica Acta 2012, 74,260-266.
[70] An, Y.; Zuo, P.; Cheng,X.; Liao, L.; Yin, G. The effects of LiBOB additive for stable SEI formation ofPP13TFSI-organic mixed electrolyte in lithium ion batteries. ElectrochimicaActa 2011, 56, 4841-4848.
[71] Xu, Y. H.; Yin, G. P.; Ma, Y.L.; Zuo, P. J.; Cheng, X. Q. Nanosized core/shellsilicon@carbon anode material for lithium ion batteries with polyvinylidenefluoride as carbon source. Journal of Materials Chemistry 2010, 20, 3216-3220.
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发表于 2020-1-11 19:13:32 | 只看该作者
日前,省教育厅公布2019年“龙江学者”评聘人选名单。我院左朋建教授获聘“龙江学者”青年学者
据了解,今年上半年开始,省教育厅按照《“龙江学者支持计划”管理办法》《黑龙江省教育厅关于2019年度龙江学者评聘工作的通知》,组织开展了2019年“龙江学者”评聘工作。经各高校、科研院所认真遴选和推荐,省教育厅组织外省(市)专家通讯评审、会议评审和网上公示,确定我校19人符合“龙江学者”特聘教授聘任条件,40人符合“龙江学者”青年学者聘任条件,同意59人聘任为2019年度“龙江学者”。“龙江学者”特聘教授聘期为5年,“龙江学者”青年学者聘期为3年。
个人简介:
左朋建,教授、博士生导师,现任电化学工程系副主任、特种化学电源研究所副所长,研究方向为锂离子电池、钠离子电池及锂硫电池等新型轻金属二次电池关键材料与器件。多年来紧密围绕化学电源工程应用的卡脖子技术问题,在高性能电池材料研发及新型电池研制方面成果显著,承担国家自然科学基金、军委装备发展部共性技术、国家重点研发计划、民用航天预先研究项目、省应用技术研发计划重大项目等多个国家和省部级科研项目,发表SCI论文130余篇,申请和授权国家发明专利30余项,获省科技一等奖2项,参编《化学电源》和《电池辞典》等著作。任教育部首批党建双创工作样板支部——化工与化学学院特种化学电源研究所师生联合党支部书记,曾获哈尔滨工业大学“优秀党务工作者”、“优秀思想政治工作者”等荣誉称号。

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