English

Nano-thermoelectric infrared bolometers

Applied Physics 2021-03-30 v2 Mesoscale and Nanoscale Physics

Abstract

Infrared (IR) radiation detectors are used in numerous applications from thermal imaging to spectroscopic gas sensing. Obtaining high speed and sensitivity, low-power operation and cost-effectiveness with a single technology remains to be a challenge in the field of IR sensors. By combining nano-thermoelectric transduction and nanomembrane photonic absorbers, we demonstrate uncooled IR bolometer technology that is material-compatible with large-scale CMOS fabrication and provides fast and high sensitivity response to long-wavelength IR (LWIR) around 10 μ\mum. The fast operation speed stems from the low heat capacity metal layer grid absorber connecting the sub-100 nm-thick n- and p-type Si nano-thermoelectric support beams, which convert the radiation induced temperature rise into voltage. The nano-thermoelectric transducer-support approach benefits from enhanced phonon surface scattering in the beams leading to reduction in thermal conductivity, which enhances the sensitivity. We demonstrate different size nano-thermoelectric bolometric photodetector pixels with LWIR responsitivities, specific detectivities and time constants in the ranges 179-2930 V/W, 0.15-3.1108\cdot10^{8} cmHz1/2^{1/2}/W and 66-3600 μ\mus, respectively. We benchmark the technology against different LWIR detector solutions and show how nano-thermoelectric detector technology can reach the fundamental sensitivity limits posed by phonon and photon thermal fluctuation noise.

Keywords

Cite

@article{arxiv.1912.12868,
  title  = {Nano-thermoelectric infrared bolometers},
  author = {Aapo Varpula and Kirsi Tappura and Jonna Tiira and Kestutis Grigoras and Olli-Pekka Kilpi and Kuura Sovanto and Jouni Ahopelto and Mika Prunnila},
  journal= {arXiv preprint arXiv:1912.12868},
  year   = {2021}
}

Comments

20 pages, 4 figures, 1 table