Department of Chemical Engineering, University of Michigan, Ann Arbor, MI 48109-2136, USA.
Nanoscale. 2012 Aug 7;4(15):4393-8. doi: 10.1039/c2nr30197k. Epub 2012 Jun 27.
Application of nanocomposites in MEMS, flexible electronics, and biomedical devices is likely to demonstrate new performance standards and resolve a number of difficult technical problems enabled by the unique combinations of electrical, optical, and mechanical properties. This study explores the possibility of making microscale nanocomposite patterns using the fusion of two highly versatile techniques: direct-write maskless UV patterning and layer-by-layer assembly (LBL). Together they can be applied to the production of a wide variety of nanostructured coatings with complex patterns. Single-walled carbon nanotube (SWNT) and gold nanoparticle LBL nanocomposites assembled with chitosan (CH) were made into prototypical patterns such as concentric helices and bus-line-and-stimulation-pads (BLASPs) used in flexible antennas and neuroprosthetic devices. The spatial resolution of the technique was established with the standard line grids to be at least 1 μm. Gold nanoparticle films revealed better accuracy and higher resolution in direct-write patterning than SWNT composites, possibly due to the granular rather than fibrous nature of the composites. The conductivity of the patterned composites was 6.45 × 10(-5)Ω m and 3.80 × 10(-6)Ω m at 20 °C for nanotube and nanoparticle composites, respectively; in both cases it exceeds electrical parameters of similar composites. Fundamental and technological prospects of nanocomposite MEMS devices in different areas including implantable biomedical, sensing, and optical devices are discussed.
应用纳米复合材料于微机电系统、软性电子及生医器材上,可能展现出新的性能标准,并解决许多因独特的电、光及机械性质组合而产生的困难技术问题。本研究探讨使用两种高通用性技术的微尺度纳米复合材料图案制造的可能性:直接写入无掩模紫外光图案化技术与层层组装(LBL)。两者结合可以应用于制造具有复杂图案的各种纳米结构涂层。以壳聚糖(CH)组装的单壁碳纳米管(SWNT)和金纳米颗粒 LBL 纳米复合材料,制作出了如用于软性天线和神经修复装置的同心螺旋和总线线与刺激垫(BLASPs)等原型图案。技术的空间分辨率是利用标准线格来建立的,至少为 1 μm。金纳米颗粒薄膜在直接写入图案化中的准确性和分辨率优于 SWNT 复合材料,这可能是因为复合材料的性质是颗粒状而非纤维状。在 20 °C 下,图案复合材料的导电性分别为 6.45 × 10(-5)Ω m 和 3.80 × 10(-6)Ω m,在这两种情况下,其导电性都超过了类似复合材料的电性参数。讨论了包括可植入式生医、感测和光学装置等不同领域中纳米复合材料微机电系统装置的基础和技术前景。