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High performance uncooled THz sensing structures based on antenna-coupled air-bridges

机译:基于天线耦合气桥的高性能非制冷太赫兹感测结构

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摘要

Antenna-coupled sensing elements, microbolometers as well as thermocouples, are potential solutions in focal plane arrays (FPA). The applications for these lightweight and low-cost sensors are specified in the field of infrared and millimeter wave imaging and sensing. Typically, these detectors can be operated uncooled in various frequency ranges. The purpose of this work is the fabrication of THz sensing structures with a low noise equivalent power (NEP) based on antenna-coupled thermocouples, which are arranged on air-bridges. For the first configuration level, a 2D thermoelectric array consisting of 2 × 4 pixels was investigated. Thereby, each pixel comprises eight thermocouples, which are connected in series to increase the responsivity. A highly effective Bi_(0.87)Sb_(0.13)/Sb thermocouple materials combination was used. The thermoelectric structure was matched to the impedance (200 Ω) of the planar dipole antenna. To improve the responsivity of the sensor elements the substrate thickness was adapted to an operation frequency of 812 GHz and acts as an optical resonator in combination with a backside gold reflector and a tuned antenna geometry. The fabrication of the 30 μm long and 3 urn wide air-bridges was realized by surface micromachining with a polyimide sacrificial layer. Thermoelectric layers as well as antenna structure and diffusion layer were patterned almost exclusively by lift-off technique in order to obtain very small structure dimensions with high reliability. In first functional tests the NEP of so manufactured THz sensing structures with eight thermocouples was determined to be 51 pW/Hz~(1/2) by an AC-DC-measurement at room temperature operation and under vacuum conditions.
机译:天线耦合传感元件,测微辐射热计以及热电偶是焦平面阵列(FPA)中的潜在解决方案。这些轻量级和低成本传感器的应用在红外和毫米波成像和传感领域中得到了指定。通常,这些探测器可以在各种频率范围内不制冷地运行。这项工作的目的是基于天线耦合的热电偶来制造具有低噪声等效功率(NEP)的THz感应结构,该热电偶布置在气桥上。对于第一配置级别,研究了由2×4像素组成的2D热电阵列。因此,每个像素包括八个热电偶,其串联连接以增加响应度。使用了高效的Bi_(0.87)Sb_(0.13)/ Sb热电偶材料组合。热电结构与平面偶极天线的阻抗(200Ω)匹配。为了提高传感器元件的响应速度,将基板厚度调整为812 GHz的工作频率,并与背面金反射器和调谐天线几何形状结合起来用作光谐振器。通过使用聚酰亚胺牺牲层进行表面微加工,可以制造30μm长和3 um宽的气桥。热电层以及天线结构和扩散层几乎都是通过剥离技术进行构图的,以便获得具有高可靠性的非常小的结构尺寸。在第一项功能测试中,如此制造的具有八个热电偶的太赫兹感测结构的NEP在室温操作和真空条件下通过AC-DC测量确定为51 pW / Hz〜(1/2)。

著录项

  • 来源
    《Microelectronic Engineering》 |2012年第10期|p.512-515|共4页
  • 作者单位

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

    Institute of Photonic Technology. Albert-Einstein-Str. .9, D-07745 Jena, Germany;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    terahertz detection; thermocouple; room temperature operation; low NEP; air-bridge; surface micromachining;

    机译:太赫兹检测;热电偶室温操作;NEP低;空桥表面微加工;

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