近年来主要围绕电磁超材料的性能设计及调控开展相关课题研究。于2017年入选中国科协青年人才托举工程、山东大学青年学者未来计划,担任中国材料研究学会超材料分会副秘书长,中国复合材料学会青年工作委员会委员。近五年内,以第一作者/通讯作者身份先后在Research(Science首本合作期刊)、Nano Energy(IF=16.602)、Journal of Materials Chemistry A(IF=11.301)、Carbon(IF=8.821)、Journal of Materials Chemistry C(IF=7.059)等国际著名SCI 期刊上发表学术论文50余篇,其中ESI高被引论文2篇,热点文章1篇,卷首文章1篇,主持国家自然基金青年项目、中国博士后基金特别资助/面上项目、军工课题等10余项研究课题。在大型国际、国内学术会议上做邀请报告2次,口头报告4次。作为主要完成人多次获得省部级奖励,包括2019年中国材料研究学会科学技术奖一等奖; 2018 年山东省自然科学二等奖; 2018 年中国材料研究学会科学技术奖二等奖。
(1)Zidong Zhang, Yaman Zhao, Guohua Fan, et al. Paper-based flexible metamaterial for microwave applications[J]. EPJ Appl. Metamat., 8 (2021) 6 (2)Zhang, W., Zhang, Z., Jiang, Y. et al. Porous Fe@Fe3O4-C Nanocomposite Using Polyvinyl Alcohol Sponge as Template for Microwave Absorption. Journal of Electronics Materials, 49, 6394–6402 (2020) (3)Zhang, Z., Zhang, W., Chen, M. et al. Fabrication of Co/Al2O3 Composite Nanofiber via Electrospinning with Tunable Magnetic Properties. Fibers Polym 21, 2485–2493 (2020). (4)Wang Z, Xie P, Fan G, Zhang Z, et al. Epsilon-negative behavior of BaTiO3/Ag metacomposites prepared by an in situ synthesis[J]. Ceramics International, 2020, 46(7): 9342-9346. (5)(12) Fu X, Zhang Z, Jiang Y, et al. Flexible 2.5 D Metamaterial with High Mechanical Bearing Capacity for Electromagnetic Interference Filters at Microwave Frequency[J]. Advanced Engineering Materials, 2020, 22(3): 1901126. (6)Jiang Y, Fu X, Zhang Z, et al. Chiffon cake-derived hierarchically porous carbon with efficient microwave absorption properties[J]. Journal of Materials Science: Materials in Electronics, 2019, 30(21): 19173-19181. (7)Xie P, Zhang Z, Wang Z, et al. Targeted double negative properties in silver/silica random metamaterials by precise control of microstructures[J]. Research, 2019, 2019(5) 1-11. (8)Wang Z, Fu X, Zhang Z, et al. Paper-based metasurface: Turning waste-paper into a solution for electromagnetic pollution[J]. Journal of Cleaner Production, 2019, 234: 588-596. (9)Jiang Y, Fu X, Zhang Z, et al. Enhanced microwave absorption properties of Fe3C/C nanofibers prepared by electrospinning[J]. Journal of Alloys and Compounds, 2019, 804: 305-313. (10) Xie P, Wang Z, Zhang Z, et al. Silica microsphere templated self-assembly of a three-dimensional carbon network with stable radio-frequency negative permittivity and low dielectric loss[J]. Journal of Materials Chemistry C, 2018, 6(19): 5239-5249. (11) Jiang Y, Xie P, Wang Z, Zhang Z, et al. Iron Granular Percolative Composites toward Radio-Frequency Negative Permittivity[J]. ECS Journal of Solid State Science and Technology, 2018, 7(9): N132. (12) Chen M, Wang Z, Xie P, Zhang Z, et al. The negative permittivity behavior of carbon nanotubes/yttrium iron garnet composites in the radio frequency[J]. Materials Letters, 2018, 213: 282-285. (13) Xie P, Zhang Z, Liu K, et al. C/SiO2 meta-composite: Overcoming the λ/a relationship limitation in metamaterials[J]. Carbon, 2017, 125: 1-8. (14) Fan G, Xie P, Wang Z, Zhang Z, et al. Tailorable radio-frequency negative permittivity of titanium nitride sintered with different oxidation pretreatments[J]. Ceramics International, 2017, 43(18): 16980-16985. (15) Zidong Zhang,Huimin Wang,Chen Qin,Shuhui Chen,et al. Fabrication and magnetic properties of electrospun cobalt nanofibers,Materials & Design,2016,89:543-548。 (16) Zidong Zhang, Shuhui Chen, Xiujie Ji, et al. Large-Area, Low-Cost Infrared Metamaterial Fabrication Via Pulsed Laser Deposition with Metallic Mesh as a Shadow Mask,Plasmonics,2015,1(7)。 (17) Zidong Zhang, Runhua Fan, Zhicheng Shi, et al. Tunable negative permittivity behavior and conductor–insulator transition in dual composites prepared by selective reduction reaction,Journal of Materials Chemistry C,2012,2013(1):79-85。
|