3D Printing of Functional Metal and Dielectric Composite Meta-Atoms

被引:11
作者
Stevens, Christopher John [1 ]
Spanos, Ioannis [1 ]
Vallechi, Andrea [1 ]
McGhee, Jack [2 ]
Whittow, William [2 ]
机构
[1] Univ Oxford, Dept Engn Sci, Parks Rd, Oxford OX13 1PJ, England
[2] Loughborough Univ, Sch Elect Elect & Syst Engn, Loughborough LE11 3TU, Leics, England
基金
英国工程与自然科学研究理事会;
关键词
3D printing; composites; fused deposition modeling; metamaterials; SPLIT RING RESONATORS; LIQUID-METALS; CHANNELS;
D O I
10.1002/smll.202105368
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
In this report, a novel fabrication method, based on casting Field's metal inside dielectric molds made via fused deposition modeling, is presented. Fused deposition modeling (FDM) has become one of the most common rapid prototyping methods. Whilst it generally produces good quality mechanical structures in thermoplastics, few reliable methods have been demonstrated that produce good quality 3D electrically conductive structures. By using Field's metal to transform dielectric molds into conductive structures, nearly any continuous metal geometry buried within the polymer can be created, allowing for the realization of complex 3D architectures. A wide range of thermoplastic materials used in fused deposition modeling have been investigated, to identify the best candidates in terms of processing temperature, relative permittivity, and loss tangent. Experimental measurements and X-ray computer tomography scans are used to determine the quality of structures fabricated using this method. Based on these findings, functional metamaterials devices operating at 600-700 MHz with high Q-factors have been produced. This method shows potential to be incorporated into standard FDM setups and could be utilized for the fabrication of curved and 3D geometries.
引用
收藏
页数:9
相关论文
共 37 条
[1]  
[Anonymous], 2018, P ITX NZS C IT
[2]  
Balanis C.A., 2005, ANTENNA THEORY ANAL, V3rd
[3]   Dielectric properties of 3D-printed materials for anatomy specific 3D-printed MRI coils [J].
Behzadnezhad, Bahareh ;
Collick, Bruce D. ;
Behdad, Nader ;
McMillan, Alan B. .
JOURNAL OF MAGNETIC RESONANCE, 2018, 289 :113-121
[4]  
Bharambe V.T., 2019, IEEE ACCESS
[5]   Vacuum-filling of liquid metals for 3D printed RF antennas [J].
Bharambe, Vivek ;
Parekh, Dishit P. ;
Ladd, Collin ;
Moussa, Khalil ;
Dickey, Michael D. ;
Adams, Jacob J. .
ADDITIVE MANUFACTURING, 2017, 18 :221-227
[6]  
Buj-Corral Irene, 2019, Procedia Manufacturing, V41, P288, DOI [10.1016/j.promfg.2019.09.011, 10.1016/j.promfg.2019.09.011]
[7]   Microwave dielectric characterisation of 3D-printed BaTiO3/ABS polymer composites [J].
Castles, F. ;
Isakov, D. ;
Lui, A. ;
Lei, Q. ;
Dancer, C. E. J. ;
Wang, Y. ;
Janurudin, J. M. ;
Speller, S. C. ;
Grovenor, C. R. M. ;
Grant, P. S. .
SCIENTIFIC REPORTS, 2016, 6
[8]   X Wave Radiator Implemented With 3-D Printed Metamaterials [J].
Chiotellis, Nikolaos ;
Zhang, Shiyu ;
Vardaxoglou, Yiannis C. ;
Grbic, Anthony .
IEEE TRANSACTIONS ON ANTENNAS AND PROPAGATION, 2020, 68 (07) :5478-5486
[9]   Additively manufactured multi-material free-form structure with printed electronics [J].
Goh, Guo Liang ;
Agarwala, Shweta ;
Goh, Guo Dong ;
Tan, Heang Kuan Joel ;
Zhao, Liping ;
Chuah, Tong Kuan ;
Yeong, Wai Yee .
INTERNATIONAL JOURNAL OF ADVANCED MANUFACTURING TECHNOLOGY, 2018, 94 (1-4) :1309-1316
[10]  
Goh GL, 2016, PR INT C PROGR ADD M, P177