Svatoš Vojtěch, Gablech Imrich, Ilic B Robert, Pekárek Jan, Neužil Pavel
Brno University of Technology, Technická 3058/10, 616 00 Brno, Czech Republic.
Center for Nanoscale Science and Technology, National Institute of Standards and Technology, Gaithersburg, MD, 20899, USA.
J Appl Phys. 2018 Mar;123(11). doi: 10.1063/1.5016465. Epub 2018 Mar 20.
Carbon nanotubes (CNTs) have near unity infrared (IR) absorption efficiency, making them extremely attractive in IR imaging devices. Since CNT growth occurs at elevated temperatures, integration of CNTs with IR imaging devices is challenging and has not yet been achieved. Here we show a strategy for implementing CNTs as IR absorbers using differential heating of thermally-isolated microbolometer membranes in a CH environment. During the process, CNTs were catalytically grown on the surface of a locally-heated membrane while the substrate was maintained at an ambient temperature. CNT growth was monitored in real time using optical microscopy. During growth, we measured the intensity of light emission and the reflected light from the heated microbolometer. Our measurements of bolometer performance show that the CNT layer on the surface of the microbolometer membrane increases the IR response by a factor of (2.3 ± 0.1) (mean ± one standard deviation of the least-squares fit parameters). This work opens the door to integrating near unity IR absorption, CNT-based, IR absorbers with hybrid complementary metal-oxide-semiconductor focal plane array architectures.
碳纳米管(CNTs)具有近乎统一的红外(IR)吸收效率,这使其在红外成像设备中极具吸引力。由于碳纳米管的生长发生在高温下,将碳纳米管与红外成像设备集成具有挑战性,目前尚未实现。在此,我们展示了一种策略,即在CH环境中利用热隔离微测辐射热计膜的差分加热,将碳纳米管用作红外吸收体。在此过程中,碳纳米管在局部加热的膜表面催化生长,而衬底保持在环境温度。使用光学显微镜实时监测碳纳米管的生长。在生长过程中,我们测量了加热的微测辐射热计发出的光强度和反射光。我们对微测辐射热计性能的测量表明,微测辐射热计膜表面的碳纳米管层将红外响应提高了(2.3±0.1)倍(最小二乘拟合参数的平均值±一个标准偏差)。这项工作为将基于碳纳米管的近乎统一红外吸收的红外吸收体与混合互补金属氧化物半导体焦平面阵列架构集成打开了大门。