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Characterization of Silver Microheaters for Vertical- Cavity Enhanced Resonant Thermal Emission

  • Gerald Pühringer
  • , Thomas Söllradl
  • , Christian Ranacher
  • , Surabhi Lodha
  • , Thomas Grille
  • , Bernhard Jakoby

Publikation: Beitrag in Buch/Bericht/KonferenzbandKonferenzbeitragBegutachtung

Abstract

We designed, simulated and experimentally characterized thin silver microheater structures placed on a dielectric multilayer membrane, which represent the concept of vertical-cavity enhanced resonant thermal emission (VERTE). This concept has the goal to achieve selective and coherent thermal emission on the backside of the multilayer membrane. The dielectric stack also is responsible for the thermal insulation, i.e. is preventing heat to be conducted away into the silicon substrate. However, the large fractions of silver demanded by the VERTE concept seem to contradict the goal of high thermal insulation for efficient heating. Here, we focus on microheater structures with high fractions of silver on the area of the membrane. We show that target operation temperatures up to 800 K (suitable for mid IR region) could be reached in finite element simulations and experiments with reasonable amounts of electric power supply, despite conduction losses into the substrate. Sample devices featuring the multilayers were fabricated using PECVD and dry etching. The multilayer membranes showed remarkable mechanical and thermal stability, making the structures suitable for a source for optical on-a-chip mid-infrared sensing.
OriginalspracheEnglisch
Titel2017 IEEE Sensors Proceedings
Seiten1503-1505
Seitenumfang3
PublikationsstatusVeröffentlicht - 2017

Wissenschaftszweige

  • 202021 Industrielle Elektronik
  • 202036 Sensorik
  • 203017 Mikromechanik
  • 202 Elektrotechnik, Elektronik, Informationstechnik
  • 202027 Mechatronik
  • 202028 Mikroelektronik
  • 202037 Signalverarbeitung

JKU-Schwerpunkte

  • Mechatronics and Information Processing
  • Epaper Wall

    Tröls, A. (Forscher*in) & Jakoby, B. (Projektleiter*in)

    01.06.201431.03.2017

    Projekt: Geförderte ForschungFFG - Österreichische Forschungsförderungsgesellschaft

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