共 31 条
Planar and Three-Dimensional Printing of Conductive Inks
被引:62
作者:
Ahn, Bok Yeop
[1
]
Walker, Steven B.
[1
]
Slimmer, Scott C.
[1
]
Russo, Analisa
[1
]
Gupta, Ashley
[1
]
Kranz, Steve
[1
]
Duoss, Eric B.
[1
,2
]
Malkowski, Thomas F.
[1
]
Lewis, Jennifer A.
[1
]
机构:
[1] Univ Illinois, Dept Mat Sci & Engn, Champaign, IL 61820 USA
[2] Lawrence Livermore Natl Lab, Ctr Micro & Nanotechnol, Berkeley, CA USA
来源:
JOVE-JOURNAL OF VISUALIZED EXPERIMENTS
|
2011年
/
58期
关键词:
Bioengineering;
Issue;
58;
Direct-write assembly;
silver ink;
3D printing;
planar;
three-dimensional;
microelectrodes;
flexible electronics;
printed electronics;
HYDROGEL SCAFFOLDS;
POWER;
D O I:
10.3791/3189
中图分类号:
O [数理科学和化学];
P [天文学、地球科学];
Q [生物科学];
N [自然科学总论];
学科分类号:
070301 [无机化学];
070403 [天体物理学];
070507 [自然资源与国土空间规划学];
090105 [作物生产系统与生态工程];
摘要:
Printed electronics rely on low-cost, large-area fabrication routes to create flexible or multidimensional electronic, optoelectronic, and biomedical devices(1-3). In this paper, we focus on one-(1D), two-(2D), and three-dimensional (3D) printing of conductive metallic inks in the form of flexible, stretchable, and spanning microelectrodes. Direct-write assembly(4,5) is a 1-to-3D printing technique that enables the fabrication of features ranging from simple lines to complex structures by the deposition of concentrated inks through fine nozzles (similar to 0.1 - 250 mu m). This printing method consists of a computer-controlled 3-axis translation stage, an ink reservoir and nozzle, and 10x telescopic lens for visualization. Unlike inkjet printing, a droplet-based process, directwrite assembly involves the extrusion of ink filaments either in-or out-of-plane. The printed filaments typically conform to the nozzle size. Hence, microscale features (< 1 mu m) can be patterned and assembled into larger arrays and multidimensional architectures. In this paper, we first synthesize a highly concentrated silver nanoparticle ink for planar and 3D printing via direct-write assembly. Next, a standard protocol for printing microelectrodes in multidimensional motifs is demonstrated. Finally, applications of printed microelectrodes for electrically small antennas, solar cells, and light-emitting diodes are highlighted.
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