材料与化学工程学院

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导师队伍

袁颂东

  • 职称:教授/博导
  • 通讯地址:湖北武汉洪山区南李路28号湖北工业大学材料与化学工程学院
  • 邮编:430068
  • E-mail:171245675@qq.com
  • 工作经历
  • 荣获奖励
  • 社会兼职
  • 研究方向
  • 研究课题
  • 研究成果
    1985.9-1989.7 武汉大学化学系(分子与化学学院),获理学学士学位
    2004.9-2009.6 华中科技大学化学与化工学院,获工学博士学位
    1989.7-1994.7 中国五环化工工程公司工作,助工
    1994.7-至今 湖北工业大学材料与化学工程学院工作,讲师/副教授/教授
    1、2019-2021年度全国农牧渔业丰收奖农业技术推广成果奖二等奖
    2、2017年深圳“南山之星”国际创新创业大赛一等奖、总冠军
    3、作为总负责人率领师生获得全国化工设计竞赛一等奖(2014年,2015年)、二等奖(2013年、2014年、2015年、2016年)、三等奖若干
    1、 湖北省化学化工学会理事
    湖北省催化专委会委员
    湖北省环境化学化工专委会委员
    湖北省催化材料2011协同创新中心理事
    湖北省有机农业研究会常务理事
    华中科技大学校友会储能专委会副主任委员
    2、Journal of Alloys and Compounds,Applied Surface Science,Journal of Materials Engineering等期刊审稿专家
    3、湖北省、河北省、河南省等科技厅,深圳市科创委评审专家
    主要从事能源材料、环境材料、催化材料等复合材料与精细化工领域的研究,具体从事锂离子电池、钠离子电池正极材料、负极材料、电解质研究,以及光热光电材料器件与金属基复合材料的研究。
    1、主持国家自然科学基金面上项目:
    “以氮化硼为核的梯度化复合纳米微球的合成及其润滑机理研究” (项目号:51172066),2012.1-2015.12,60万
    2、主持国家重点研发计划(中英桥国际合作项目)子项目:
    新型薄膜光伏真空玻璃关键技术及产业化合作研究子项目-高强度高热阻多孔材料的开发(项目编号:2016YFE01243000),2017.1-2019.12,1120万
    3、主持湖北省技术创新专项(重大专项)子项目:
    基于锂离子电池和超级电容器的电动汽车混合储能系统研究-高效储能材料开发及应用(项目编号:2018AAA056),2018.1-2020.12,200万
    4、主持其他部分项目:
    锂电级高分子量羧甲基纤维素HM-CMC合成工艺研究,2011协同中心(项目号:HBSKFZD2015001), 2016.1-2017.12,10万
    新能源材料催化合成及制备新技术基础研究,2011协同创新中心(项目编号:4217-00059),2018.1-2019.12,40万
    高能量密度、耐低温磷酸铁锂电池关键技术与研究,企业(项目编号:2021509),2021.5-2023.5,15万
    用于储能装置的BN基复合材料技术开发,企业(项目编号:2015250004),2015.12-2018.12,27万
    1、代表性论文
    1) Glucose-based surface modification of Li1.2Mn0.54Ni0.13Co0.13O2 as a cathode material for lithium-ion batteries .Int. J. Electrochem. Sci., 17 (2022)
    2) Preparation and Electrochemical Properties of Gadolinium Oxide –doped Carbon Aerogels/Sulfur Composites.Int. J. Electrochem. Sci.,17 (2022)
    3) A facile solvothermal synthesis of Mn-doped LiFePO(4)nanoplates with improved electrochemical performances.IONICS,2021-01-01
    4) Crystal Phase-dependent Electrochromic Performance of Porous Titanium Dioxide Nanotube Films. INTERNATIONAL JOURNAL OF ELECTROCHEMICAL SCIENCE.2021-05-01,卷: 16期: 5
    5) Solvothermal synthesis high lithium ionic conductivity of Gd-doped Li1.3Al0.3Ti1.7(PO4)(3) solid electrolyte.FUNCTIONAL MATERIALS LETTERS.2021-04-01卷: 14期: 03
    6) Enhanced Electrochemical Performance of Nickel-Rich Cathode Materials by Surface Modi¯cation with Al2O3–ZrO2 for Lithium Ion Batteries. NANO: Brief Reports and Reviews, Vol. 16, No. 4 (2021) 2150041
    7) Disodium Rhodizonate/Reduced Graphene Oxide-Sodium Alginate Composite as a Cathode Material for Sodium-ion Batteries with High Cyclic Performance[J]. International Journal of Electrochemical Science, 2021:210361
    8) Preparation and electrochemical properties of Fe/Fe3O4@r-GO composite nanocage with 3D hollow structure.Journal of Solid State Electrochemistry.2020.11
    9) An unprecedented cobalt-catalyzed selective aroylation of primary amines with aroyl peroxides.Tetrahedron Letters 61 (2020) 152399
    10) Cobalt-catalyzed Oxyalkylation of Styrenes via α-C(sp3)−H Bond Activation of Ethers without Organic Peroxides.Asain Journal of Organic Chemistry. 09 August 2019
    11) 表面活性剂辅助插层制备二维Ti3C2Tx及其电化学性能研究.功能材料,2019(9)V50:P09142-09146
    12) Research progress of nickel-rich ternary materials for lithium-ion batteries. Journal of Materials Engineering. 2019-10-11 ,V47,N10,p1-9
    13) Recrystallization synthesis of disodium rhodizonate-conductive polyaniline composite with high cyclic performance as cathode material of sodium-ion battery.Applied Surface Science.v 499, 1 January 2020PII: S0169-4332(19)32665-0
    14) Reverse Micro-Emulsion Synthesis of Oxygen-Enriched Low-Friction Boron Nitride/Calcium Borate Microspheres. Aust. J. Chem. 2018(11)71:983-989
    15) One-pot co-precipitation synthesis of Fe3O4 nanoparticles embedded in 3D carbonaceous matrix as anode for lithium ion batteries.J Mater SCI. March 2019, Volume 54, Issue 5, pp 4212–4224
    16) Adsorption Characteristics of Phenolic Compounds on Graphene Oxide and Reduced Graphene Oxide:A Batch Experiment Combined Theory Calculation.Appl. Sci. 2018, 8, 1950-1962
    17) Sono-assisted synthesis of CuO nanorods–graphene oxide as a synergistic activator of persulfate for bisphenol A removal.Journal of Environmental Chemical Engineering, 6 (2018) 4078–4083
    18) A Novel SnO2@BNNSs@C Composite Nano-Structure and It’s Electrochemical Energy Storage Charateristic. Journal of Materials Engineering,2018,46(11):77-83
    19) Enhanced performance of LiFePO4 originating from the synergistic effect of graphene modification and carbon coating.Journal of Alloys and Compounds 767 (2018) 528-537
    20) Copper-catalyzed α-C–H amidation of simple ethers through C(sp3)–H/N–H cross dehydrogenative coupling[J]. Organic Chemistry Frontiers,2018,5:967-971
    21) Obtaining Ultra-High Surface Area TiO2 Nanorods via Hydrothermally Transformation of Elongated Titanate Nanotubes[J]. Journal of Nano Research,2018,51:13-23
    22) Hydrothermal Synthesis of Red Phosphorus @Reduced Graphene Oxide Nanohybrid with Enhanced Electrochemical Performance as Anode Material of Lithium-ion Battery[J]. Applied Surface Science, 2018,433(1):125-132
    23) A facile synthesis of boron nitride nanosheets and their potential application in dye adsorption[J]. Diamond & Related Materials, 2018, 81:89-95
    24) Preparation and tribological properties of BN/calcium borate nanocomposites as additive in lubricating oil[J]. Industrial Lubrication & Tribology, 2018,70(1):105-114.DOI: 10.1108/ILT-10-2016-0255.ISSN:0036-8792
    25) Preparation and Electrochemical Performance of TiO2-NTs/rGO Composite. Journal of Materials Engineering. Journal of Materials Engineering), 2017, 45(12):93-98.
    26) Xiaohua Zuo, Xiangyi Deng.Simultaneous enhancement of adsorption and peroxymonosulfate activation of Nitrogen-doped reduced graphene oxide for bisphenol A removal[J].Journal of Environmental Chemical Engineering 2017( 5): 4291–4297
    27) Reduced graphene oxide and carbon/elongated TiO2 nanotubes composites as anodes for Li-ion batteries[J].Nano-Structures & Nano-Objects.12(2017)27-32
    2、授权专利
    1)一种保温调湿泡沫混凝土材料及其制备方法(授权),专利号:ZL201510124258.7
    2)相变储能集料水泥基复合材料及其制备工艺(授权),专利号:ZL201511005608.4
    3)反相微乳液法原位包覆制备氮化硼/硼酸钙复合纳米材料的方法,专利号:ZL201610087522.9
    4)羧甲基纤维素钠及其制备方法,专利号:ZL201610426994.2 5)石墨烯@超长二氧化钛(B)纳米管复合材料及其制备方法 ,专利号:ZL1610559790.6
    6) 一种以浓硫酸为插层剂制备单层或寡层氮化硼纳米片的方法,专利号:ZL201710587064.X
    7)一种纳米红磷与石墨烯复合负极材料的制备方法,专利号:ZL01710687552.0
    8)一锅法合成四氧化三铁@碳复合材料的制备方法,专利号:ZL201711319531.7
    9)钠离子电池红磷负极极片及其制备方法,专利号:ZL201711322526.1 10)一种制备单根纤维拉拔试验用试样的工艺及试样成型装置,专利号: ZL201610223182.8
    11)一种高延性水泥基复合材料用改性聚乙烯醇纤维、改性方法及其复合材料,专利号:ZL201610375068.7
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