基本信息

姓名:王海旺
性别:男
出生年月:1981年08月
学位:理学博士
职称:教授
导师类型:博士研究生导师
工作单位:东北大学秦皇岛分校资源与材料学院
联系方式
电子邮箱:whwdbdx@neuq.edu.cn;whwdbdx@126.com
联系电话:18630332906
研究方向
新能源纳米催化材料设计与制备、前沿过渡金属氧化物纳米材料表界面调控、有机高分子基纳米复合材料构筑、硅气凝胶纳米复合材料性能优化、有机高分子防渗功能材料开发
教育背景
2005.09-2008.07 北京化工大学 材料物理与化学专业 工学硕士
2008.09-2011.06 北京理工大学理学院 物理化学专业 理学博士
工作履历
2011.07-至今 东北大学秦皇岛分校资源与材料学院,历任讲师、副教授、教授,从事材料科学与工程领域的教学、科研及研究生培养工作
学术兼职
1. 中国化学学会会员、中国绝热保温学会会员
2. 《New Journal of Chemistry》《Journal of Materials Chemistry A》《RSC Advances》《Colloids and Surfaces A: Physicochemical and Engineering Aspects》等国际期刊同行评审专家
人才计划与荣誉
入选河北省“三三三”人才工程,牵头组建的科研团队获评2014年全国首批“小平科技创新团队”(东北大学秦皇岛分校唯一获评团队)
科研工作成果
长期致力于纳米材料与复合材料的设计、制备及应用基础研究,聚焦新能源催化、环境功能材料、高分子功能材料等研究方向,在纳米催化材料表界面调控、有机-无机杂化材料构筑、功能气凝胶制备等方面取得系列创新性成果。
1. 学术论文:在《Carbon》《Chemical Communications》《ACS Sustainable Chemistry & Engineering》《Small》等国际顶级及知名期刊发表学术论文60余篇,多篇论文入选ESI高被引论文、热点论文,研究成果受到国际同行广泛关注,相关成果为新能源催化与环境功能材料的开发提供理论与技术支撑。
2. 科研项目:作为项目负责人或核心成员,主持/参与国家自然科学基金、河北省自然科学基金等国家、省部级科研项目10余项,围绕纳米杂化材料、半导体纳米材料、高介电复合材料等方向开展系统性研究,攻克多项材料制备与性能调控关键技术。
3. 专利与成果转化:授权国家发明专利30余项,聚焦功能材料产业化应用,推动5项核心技术成果实现产业化转化,实现科研成果与产业需求的深度融合,为相关行业技术升级提供技术支撑。
4. 团队建设:牵头打造的科研创新团队,在新能源与环境材料领域形成稳定的研究方向和梯队,团队成员在国家级、省部级科技竞赛中斩获奖项50余项,其中国家级奖项20余项、省级一等奖及以上30余项,多次刷新学校在相关领域竞赛的最好成绩,培养了一批兼具创新思维与实践能力的高素质材料学科人才。
教学工作成果
深耕高等教育教学改革与实践,融合科研与教学,注重学生创新能力和工程实践能力培养,在课程建设、教学改革、创新创业教育等方面成效显著。
1. 课程建设:主讲本科生《高分子化学》《创业基础》、研究生《材料物理与化学》等核心课程;牵头2023年校级一流课程《高分子化学》建设项目(经费4万元),主持2022-2023年河北省高等教育教学改革研究与实践项目,持续优化材料学科课程体系与教学内容。
2. 教学成果:以第一负责人获河北省教学成果奖二等奖1项、东北大学秦皇岛分校教学成果奖一等奖1项;2018年入选全国高等学校创新创业教育课程“精彩一课”,主讲的《创业基础》获评“河北省普通高校就业创业指导优质课程”,教学质量与课程建设水平获省级权威认可。
3. 创新创业教育:积极推动本科生与研究生创新创业教育,指导学生参与国家级、省部级创新创业竞赛并斩获多项大奖,将科研成果融入创新创业教学,实现“教学-科研-双创”协同发展。
代表性学术论文(*为通讯作者,一区为中科院JCR一区期刊)
[1] Zhang Nuo, Wang Bingzhu, Hu Pengcheng, et al. Wang Haiwang*. Achieve high-efficiency photocatalytic hydrogen production of MCNTs-CdS/Pt/ZnFe₂O₄ heterojunction owing to building charge transport bridge[J]. Journal of Environmental Chemical Engineering, 2025, 13(2): 115800.(一区)
[2] Guo Haonan, Wang Bingzhu, Hu Pengcheng, Wang Haiwang*. Enhancing H₂ evolution activity of MWCNTs-biphasic CdS photocatalyst through microstructure regulation[J]. Journal of Environmental Chemical Engineering, 2025, 13(3): 116417.(一区)
[3] Li Ruorou, Wang Bingzhu, Zhao Yimei, et al. Wang Haiwang*. In-situ growth of WO₃/Bi₂WO₆ heterojunctions on carbon fiber cloth: Design, morphology modulation and photocatalytic performance[J]. Journal of Environmental Chemical Engineering, 2025, 13(5): 118926.(一区)
[4] Cao Weihua, Yang Xiao, Wang Haiwang*, et al. IPN-PUA: An ultra-low density self-lubricating composite with IPN structure–liquid lubricant coupling mechanism[J]. Friction, 2025, 13(8): 9440997.
[5] Sun Qihan, Yang Lin, Hu Fengjie, et al. Wang Haiwang*. Microstructural evolution and kinetics of monoclinic scheelite-type BiVO₄-based materials with enhanced color performance[J]. Ceramics International, 2025, 51(23): 40414-40430.(一区)
[6] Ma Yuan, Wang Bingzhu, Wang Haiwang*, et al. Microstructure regulation and photocatalytic H₂ evolution mechanism of novel MCNTs-Zn₀.₃Cd₀.₇S/Pd composites[J]. International Journal of Hydrogen Energy, 2025, 126:484-495.(一区)
[7] Fang Qimin, Sun Qihan, Ge Jinming, Wang Haiwang*, Qi Jian. Multidimensional Engineering of Nanoconfined Catalysis: Frontiers in Carbon-Based Energy Conversion and Utilization[J]. Catalysts, 2025, 15(5): 477.
[8] Fang Qimin, Sun Qihan, Zhong Ruixia, Wang Haiwang*, Qi Jian. Recent advances in doping engineering of heterogeneous catalyst for carbon dioxide hydrogenation[J]. Materials Today Chemistry, 2025, 46:102770.(一区)
[9] Yang Ke, Li Chenqi, Zhu Qinghan, Wang Haiwang*, Qi Jian. Rich Oxygen Vacancies in Bimetallic MnCo₂O₄.₅ Spheres for Enhancing Lean Methane Catalytic Oxidation[J]. Nanomaterials, 2025, 15(7): 524.
[10] Guo Li, Fu Ziming, Li Haoran, et al. Wang Haiwang*, Qi Jian. Smart hydrogel: A new platform for cancer therapy[J]. Advances in Colloid and Interface Science, 2025, 340:103470.(一区)
[11] Zhao Yihao, Wang Bingzhu, Fang Qimin, et al. Wang Haiwang*. Design and structural control of g-C₃N₄/(Pd)/BiOBr photocatalyst for comprehensive degradation of multi-component wastewater[J]. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING, 2024,12(5):113575.(一区)
[12] Wu Songyang, Wang Bingzhu, Guo Haonan, et al. Wang Haiwang*. Achieve efficient photocatalytic degradation of multiple pollutants by constructing WO3₋ₓ/BiOBr heterojunctions with hierarchical structure on carbon fibre cloths[J]. APPLIED SURFACE SCIENCE,2024,671: 160670.(一区)
[13] Wang Wei, Yang Ke, Zhu Qinghan, et al. Wang Haiwang*, Qi Jian. MOFs-Based Materials with Confined Space: Opportunities and Challenges for Energy and Catalytic Conversion[J]. SMALL, 2024, 2311449.(一区)
[14] Wang Wei, Han Han, Zhulin, Wang Haiwang*, et al. Construction of Co/Mn-based nanowires with adjustable surface state for boosting lean methane catalytic oxidation[J]. CERAMICS INTERNATIONAL, 2024,50(1): 2293-2302(一区)
[15] Xie Changxiang, Wang Bingzhu, Wang Guanqi, Wang Haiwang*. Preparation of amorphous Bi-Fe-O series semiconductor and its crystallization behavior and photocatalytic activity[J]. JOURNAL OF ALLOYS AND COMPOUNDS,2024,175658.
[16] Wang Wei, Wei Ruibo, Zhu Qinghan, et al. Wang Haiwang. JOURNAL OF ENVIRONMENTAL CHEMICAL ENGINEERING,2024,12(5): 113783.(一区)
[17] Wang Wei, Qiu Ruishan, Li Chenqi, et al. Wang Haiwang*, Qi Jian. Advancing catalytic oxidation of lean methane over cobalt-manganese oxide via a phase-engineered amorphous/crystalline interface[J]. CHEMICAL COMMUNICATIONS, 2024, 60(67): 8896-8899(一区,ESI高被引/热点论文)
[18] Guo Zishuang, Wang Zeyi, Wang Haiwang*, et al. Lattice Distortion Induced Ta-doped BaTiO₃ for Efficient Photocatalytic Water Splitting for Hydrogen Production[J], 2024,9(28): 202304550.
[19] Fu ZiMing, Zhen ErFei, Li Haoran, et al. Wang Haiwang*, Qi Jian. Boosting mechanical properties of carbon fibers by gas-liquid dual-effect approach[J]. MATERIALS CHEMISTRY AND PHYSICS,2024, 325:129735.
[20] Zhang Yuxuan, Wei Ruibo, Yang Lin, et al. Wang Haiwang*, Qi Jian. In Situ Growth of Mn-Co₃O₄ on Mesoporous ZSM-5 Zeolite for Boosting Lean Methane Catalytic Oxidation[J]. CATALYSTS, 2024,14(7):397.
[21] Guo Li, Ji Cheng, Wang Haiwang*, et al. JOURNAL OF COLLOID AND INTERFACE SCIENCE,2024,672: 497-511.(一区)
[22] Wang Wei, Fu Ziming, Yang Ke, et al. Wang Haiwang*, Qi Jian. Deep understanding the formation of MnCoOₓ in-situ grown on foam nickel towards efficient lean methane catalytic oxidation[J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2024,694:134145.(一区)
[23] Xie Changxiang, Ma Yuan, Guo Zishuang, et al. Wang Haiwang*. Preparation of Ag-doped SrTiO₃ by Gel-assisted solid state method: Microstructure evolution and photocatalytic performance[J]. MATERIALS LETTERS,360:135930.
[24] Qiu Ruishan, Wang Haiwang*, et al. Advancement of modification engineering in lean methane combustion catalysts based on defect chemistry[J]. Catal. Sci. Technol., 2023,13:2566-2584.(ESI高被引、热点论文)
[25] Qiu Ruishan, Yan Kong, Wei Wang, et al. Haiwang Wang*.The high activity of Co-Mn-based solid solution catalysts for lean methane combustion[J]. Journal of Alloys and Compounds,2023,952:169973.
[26] Yang Lin, Zhu Qinghan, Yang Ke, et al. Wang Haiwang*. A Review on the Application of Cobalt-Based Nanomaterials in Supercapacitors[J]. NANOMATERIALS,2022,12(22):4065.
[27] Chen Hongfeng, Wang Wei, Yang Lin, et al. Wang Haiwang*. A Review of Cobalt-Containing Nanomaterials, Carbon Nanomaterials and Their Composites in Preparation Methods and Application[J],2022,12(12):2042.
[28] Fu Weijie, Zhao Youhai, Wang Haiwang*, et al. Study on preparation, photocatalytic performance and degradation mechanism of polymeric carbon nitride/Pt/nano-spherical MoS₂ composite[J]. JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS,2022,166: 110700.
[29] Xiong Xinyu, Jin Yaran, Wang Haiwang*, et al. Study on the hydrogen production properties and electron transfer mechanism of CdS/WO₃ composite photocatalyst[J]. MATERIALS CHEMISTRY AND PHYSICS,2022,281:125824.
[30] Zhengjie Wu, Youhai Zhao, Xiong Chen, et al. Wang Haiwang*, et al. Preparation of polymeric carbon nitride/TiO₂ heterostructure with NH4Cl as template: Structural and photocatalytic studies[J]. JOURNAL OF PHYSICS AND CHEMISTRY OF SOLIDS,2022,164: 110629.
[31] Zhengjie Wu, Youhai Zhao, Lijie Mi, et al. Wang Haiwang*. Preparation of g-C₃N₄/TiO₂ by template method and its photocatalytic performance[J]. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 2021, 624: 126756.
[32] Kefan Liu, Lijie Mi, Wang Haiwang*, et al. Preparation of Ba₁₋ₓSrₓTiO₃ by the sol-gel assisted solid phase method: Study on its formation mechanism and photocatalytic hydrogen production performance[J]. Ceramics International, 2021,47: 22055-22064.(一区)
[33] Mi Lijie, Zhang Qiankang, Wang Haiwang*, et al. Synthesis of BaTiO₃ nanoparticles by sol-gel assisted solid phase method and its formation mechanism and photocatalytic activity[J]. CERAMICS INTERNATIONAL, 2020, 46(8): 10619-10633.(一区)
[34] Chao Li, Wang Haiwang*, Wei Xinfang, et al. Design of SiO₂-TiO₂-P(AM-DMC) cationic composite flocculant and optimization of the flocculation process using response surface methodology[J]. JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2020, 1-14.
[35] Ji Cheng, Wei Xinfang, Wang Haiwang*, et al. A kaolinite-based design of kaolin/TiO₂-PAM composite flocculant and the application of the oil sand tailings flocculant[J]. JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2019.
[36] Wang Haiwang*, Chao Li, Wei Xinfang, et al. Design of SiO₂-TiO₂-PAM composite flocculant with self-degrading characteristics and optimization of the flocculation process using a combination of central composite design and response surface methodology[J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2019,583:123982.
[37] Gao Dekuan, Wei Xinfang, Zhang Yukai, et al. Wang Haiwang*, et al. Preparation of TiO₂-P(AM-AA) organic-inorganic composite water-retaining agent based on photocatalytic surface-initiated polymerization[J]. JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2019.
[38] Wang Haiwang*, Wang Guanqi, Zhang Yukai, et al. Preparation of RGO/TiO₂/Ag Aerogel and Its Photodegradation Performance in Gas Phase Formaldehyde[J]. SCIENTIFIC REPORTS, 2019, 9(16314):(一区)
[39] Wang Haiwang*, Zhang Yukai, Gao Dekuan, et al. Research on self-degradation of RGO/TiO₂-P(AM-DAC) organic-inorganic composite flocculant prepared by surface initiated polymerization and its flocculation mechanism of oil sand tailings[J]. EUROPEAN POLYMER JOURNAL, 2019, 120.(一区)
[40] Wang Haiwang*, Li Jinlong, Liu Wenge, et al. Enhancing catalytic CH₄ oxidation over Co₃O₄/SiO₂ core-shell catalyst by substituting Co²⁺ with Mn²⁺[J]. JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2019.
[41] Ma Yuan, Wu Zhengjie, Wang Haiwang, Wang Guanqi*, et al. Synthesis of nanocrystalline strontium titanate by a sol-gel assisted solid phase method and its formation mechanism and photocatalytic activity[J]. CRYSTENGCOMM, 2019, 21(26): 3982-3992.
[42] Wang Haiwang*, Wang Guanqi, Zhang Yukai, et al. Preparation of RGO/TiO₂ photocatalyst and the mechanism of its hydrothermal process[J]. JOURNAL OF THE CHINESE CHEMICAL SOCIETY, 2018, 66(7): 734-739.
[43] Wang Haiwang*, Chao Li, Wei Xinfang, et al. Design and preparation of flocculant with self-degrading characteristics for dewatering of oil sand tailings[J]. JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2019.
[44] Wang Haiwang*, Li Jinlong, Liu Wenge, et al. Preparation of novel carbon spheres based on molecular design and adsorption/degradation of methyl orange[J]. JOURNAL OF DISPERSION SCIENCE AND TECHNOLOGY, 2019.
[45] Wang Haiwang*, Zhang Yukai, Wang Guanqi, et al. A molecular-based design of RGO/TiO₂-PAM composite flocculant with photocatalytic self-degrading characteristics and the application of the oil sand tailings flocculant[J]. ACS Sustainable Chemistry & Engineering, 2019, 7(7): 6758-6768.(一区)
[46] Wei Xinfang, Wang Haiwang*, Bian Jiali, et al. Synthesis and Characterization of a New Organic–Inorganic Hybrid Hydrogel by Using SiO₂ Nanoparticles as an Initiator[J]. Journal of the Chinese Chemical Society, 2018, 65(2): 225-230.
[47] Wang Haiwang*, Wang Xin, Wang Bingzhu, et al. Synthesis of Poly(2-Hydroxyethyl Methacrylate)-based Hybrid Nanoparticles via Visible-Light-Initiated Radical Polymerization[J]. Journal of the Chinese Chemical Society, 2017, 64(6): 612-617.
[48] Wei Xinfang, Tao Junshi, Li Mingzhi, et al. Wang Haiwang*, et al. Polyacrylamide-based inorganic hybrid flocculants with self-degradable property[J]. Materials Chemistry and Physics, 2017, 192: 72-77.
[49] Haiwang Wang*, Tianbo Zhao*, Xinfang Wei, et al. Easy preparation of carbon sheets with controlled microstructures from sucrose/layered superabsorbent polymer hydrogels[J]. Carbon, 2011, 49: 357-363.
[50] Haiwang Wang*, Tianbo Zhao*, Guozhong Lu, et al. Novel Micro∕nanostructures from a Double Network Gel[J]. Journal of the Chinese Chemical Society, 2011, 58(3): 282-286.
[51] Shuai Zhang, Tianbo Zhao*, Haiwang Wang*, et al. Comparison of Spe-Td-Gc-Fid with Uplc-Pda and Gc-Ms Methods for Analysis of Benzene, Toluene and Xylene Isomers in Solid-Liquid Mixing Paints[J]. Chromatographia, 2011, 74: 163-169.
[52] Haiwang Wang*, Ying Wang, Huiying Zhou, et al. An easy preparation of bulk nanostructured carbon materials[J]. Materials Chemistry and Physics, 2012, 135: 668-675.
[53] Haiwang Wang*, Ying Zhu, Xinfang Wei, et al. New protocol for synthesis of new nanomaterials with continuous 3D networks[J]. Journal of Nanoparticle Research, 2014, 16: 2409.
[54] Haiwang Wang*, Yifei Xing, Yue Li, et al. A unique surface-initiated property of nanoparticles and application for the synthesis of hybrid organic–inorganic nanoparticles[J]. Chemical Communications, 2014, 50: 5864-5866.
[55] Haiwang Wang*, et al. Mechanical properties of phenolic foams modified by organic-inorganic nanocomposite[C]. The 2013 2nd International Conference on Applied Mechanics and Materials, Zhuhai, 2013: 604-609.
[56] Haiwang Wang*, et al. An easy preparation of hybrid SiO₂@Poly acrylic acid Nanoparticles[C]. The 2013 2nd International Conference on Sensors, Measurement and Intelligent Materials, Guangzhou, 2013: 1340-1343.
[57] Haiwang Wang*, et al. Preparation of a Net with the function of sand-resistance and sand-fixation[C]. The 2013 International Conference on Materials for Renewable Energy & Environment, Nanjing, 2013: 1192-1195.
[58] Shuai Zhang, Tianbo Zhao, Xin Xu, Haiwang Wang*, et al. Determination of BTEX Compounds in Solid–Liquid Mixing Paint Using the Combination of Solid Phase Extraction,Thermal Desorption and GC-FID[J]. Chromatographia, 2010, 71: 1131-1135.
[59] Jian Qi, Tianbo Zhao, Xin Xu, et al. Haiwang Wang*. Study of cracking of large molecules over a novel mesoporous beta[J]. Catalysis Communications, 2009, 10: 1523–1528.
[60] Jian Qi, Tianbo Zhao, Fengyan Li, et al. Haiwang Wang*. Study of cracking of large molecules over a new type meso-ZSM-5 composite zeolite[J]. J Porous Mater, 2010, 17(2): 177-184.
代表性授权国家发明专利(标注成果转化)
Z-1 一种节能环保型热熔标线涂料的制备方法(2016授权,2018年成果转化)
Z-2 一种水溶性纳米二氧化钛的制备方法(2021授权)
Z-3 制备聚甲基丙烯酸羟乙酯-二氧化钛纳米杂化材料的方法(2021授权)
Z-4 一种可降解聚丙烯酰胺驱油剂及其制备方法(2018授权)
Z-5 一种改性酚醛泡沫保温板的制备方法(2017授权)
Z-6 一种常温铁氧体循环处理重金属污水的方法及装置(2017授权)
Z-7 一种大孔炭材料的制备方法及其产品(2016授权)
Z-8 一种有机-无机材料复合改性水泥的制备方法(2016授权)
Z-9 一种聚丙烯酰胺的制备方法(2015授权)
Z-10 一种耐盐性好、低吸水倍率农业抗旱型保水剂的制备方法(2015授权)
Z-11 一种治沙砖的制作方法及其治沙方法(2015授权)
Z-12 一种改性酚醛保温泡沫材料的制备方法(2015授权)
Z-13 一种化学固沙剂的制备方法(2017授权)
Z-14 一种铁酸铋基复合纳米纤维的制备方法(2022授权)
Z-15 一种钛酸钡基全固态超级电容器的制备方法(2021授权)
Z-16 一种纳米级钛酸锶钡粉体的制备方法(2021授权)
Z-17 一种RGO/TiO₂/Ag气凝胶型光催化剂的制备方法和应用(2022授权,2023年成果转化)
Z-18 一种纳米级钛酸锶粉末的制备方法(2021授权)
Z-19 一种硅溶胶改性纤维素基粘结剂、环保储水型固沙板及其制备方法(2021授权,2023年成果转化)
Z-20 一种石墨烯/二氧化钛/聚丙烯酰胺复合自降解絮凝剂的制备方法(2020授权,2023年成果转化)
Z-21 一种无机纳米颗粒@PAM杂化材料的制备方法(2019授权)
Z-22 一种互穿网络结构水凝胶的制备方法(2019授权)
Z-23 一种高强度复合水凝胶及其制备方法(2019授权)
Z-24 一种纳米二氧化钛光催化降解剂及其制备方法(2019授权)
Z-25 一种石墨烯/酚醛树脂导热复合材料及其制备方法(2019授权,2023年成果转化)
Z-26 一种节能环保型隔热涂料及其制备方法(2019授权)
Z-27 一种涂料用高分散性TiO₂填料及其制备方法(2020授权)
Z-28 一种快干型涂料(2019授权)
Z-29 一种纯相铁酸铋粉体的制备方法(2018授权)
主持/参与的代表性科研项目
1. 国家自然科学基金项目:微纳结构尺寸效应下高强度纳米杂化水凝胶的表面引发聚合机制、有机-无机界面结构调控与机械强度研究(项目负责人)
2. 国家自然科学基金项目:Bi/Ga 共掺杂 La-Al-O 系非晶的无容器法制备及其性能研究(核心参与)
3. 国家自然科学基金项目:钙钛矿 ABO3 型高熵陶瓷的组分设计和多尺度结构构筑(核心参与)
4. 河北省自然科学基金项目:基于表面引发聚合技术的新型纳米杂化水凝胶的设计、制备及其机理研究(项目负责人)
5. 省部级科研项目:新型有机-无机纳米杂化材料的制备机制及其应用的研究(项目负责人)
6. 省部级科研项目:新型三维网状半导体纳米材料的形成机理及其应用的研究(项目负责人)
7. 省部级科研项目:低导热、高闭孔酚醛泡沫研究(项目负责人)
8. 省部级科研项目:以高吸水性树脂为模板的新型纳米材料的制备及其性能的研究(项目负责人)
9. 省部级科研项目:基于石墨烯表面有机化新技术设计、制备新型聚合物基高介电纳米杂化材料的研究(项目负责人)
10. 省部级科研项目:基于纳米颗粒表面引发有机单体聚合的机制及其性能的研究(项目负责人)
11. 校级科研项目:一种新型高强度PAM@Fe3O4纳米杂化水凝胶的设计及其制备的研究(项目负责人)
12. 校级科研项目:新型高介电纳米杂化材料的设计、制备及其反应机制的研究(项目负责人)
团队指导学生获代表性科技竞赛奖项
国家级奖项
1. 2024年 第十九届“挑战杯”全国大学生课外学术科技作品竞赛“揭榜挂帅”专项 全国特等奖(七星级,学校赛事历史突破)
2. 2022年 第十五届大学生创新创业年会“优秀学术论文奖”全国一等奖(六星级,学校本科生学术论文赛道首次获奖)
3. 2017年 第三届全国大学生“互联网+”创新创业大赛 国家银奖(七星级,学校赛事历史突破)
4. 第九届全国大学生节能减排社会实践与科技竞赛 全国一等奖
5. 第十五届“挑战杯”全国大学生课外学术科技作品竞赛 全国二等奖
6. 第十六届全国大学生节能减排社会实践与科技竞赛 国家二等奖
7. 第四届全国大学生高分子材料创新创业大赛 国家二等奖
8. 第十一届全国环境友好科技竞赛 国家二等奖
9. 第十二届“挑战杯”中国大学生创业计划竞赛 国家铜奖
10. “创青春”全国大学生创新创业大赛 国家铜奖
11. 第三届“创青春”中国青年互联网创业大赛 国家铜奖
12. 2015年“中国创翼”青年创业创新大赛 “银翼奖”
13. 第二届“中国创翼”青年创新创业大赛 国家银翼奖
14. 全国大学生“生态创想,绿色行动”环保大赛 全国一等奖/二等奖
(其余国家级二、三等奖及优秀奖若干)
省级一等奖/特等奖
1. “挑战杯”河北省大学生课外学术科技作品竞赛 特等奖(多次)
2. “创青春”河北省大学生创新创业大赛 河北省特等奖
3. 第二届/第五届河北省大学生创新创业年会 河北省特等奖
4. 河北省“互联网+”创新创业大赛 河北省金奖
5. “挑战杯”河北省大学生学术科技作品竞赛 河北省一等奖(多次)
6. “创青春”河北省大学生创业大赛 河北省一等奖
(其余省级二等奖及以上奖项若干)
主讲课程
本科生课程
《高分子化学》(校级一流课程)、《创业基础》(河北省普通高校就业创业指导优质课程)
研究生课程
《材料物理与化学》