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Published April 28, 2024 | Published
Journal Article Open

Investigation of cryogenic current–voltage anomalies in SiGe HBTs: Role of base–emitter junction inhomogeneities

Creators
Naik, Nachiket R.1 ORCID icon
Gabritchidze, Bekari1 ORCID icon
Chen, Justin H.1 ORCID icon
Cleary, Kieran A.1 ORCID icon
Kooi, Jacob2 ORCID icon
Minnich, Austin J.1 ORCID icon
  • 1. ROR icon California Institute of Technology
  • 2. ROR icon Jet Propulsion Lab

Abstract

The deviations of cryogenic collector current–voltage characteristics of SiGe heterojunction bipolar transistors (HBTs) from ideal drift-diffusion theory have been a topic of investigation for many years. Recent work indicates that direct tunneling across the base contributes to the non-ideal current in highly scaled devices. However, cryogenic discrepancies have been observed even in older-generation devices for which direct tunneling is negligible, suggesting that another mechanism may also contribute. Although similar non-ideal current–voltage characteristics have been observed in Schottky junctions and were attributed to a spatially inhomogeneous junction potential, this explanation has not been considered for SiGe HBTs. Here, we experimentally investigate this hypothesis by characterizing the collector current ideality factor and built-in potential of a SiGe HBT vs temperature using a cryogenic probe station. The temperature dependence of the ideality factor and the relation between the built-in potential as measured by capacitance–voltage and current–voltage characteristics are in good qualitative agreement with the predictions of a theory of electrical transport across a spatially inhomogeneous junction. These observations suggest that inhomogeneities in the base–emitter junction potential may contribute to the cryogenic non-idealities. This work helps to identify the physical mechanisms limiting the cryogenic microwave noise performance of SiGe HBTs.

Copyright and License

© 2024 Author(s). All article content, except where otherwise noted, is licensed under a Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).

Acknowledgement

The authors thank Akim Babenko, John Cressler, Nicolas Derrier, Xiaodi Jin, Pekka Kangaslahti, Holger Rücker, Michael Schröter, and Sander Weinreb for useful discussions. This work was supported by NSF Award No. 1911926 and by JPL PDRDF Project No. 107978.

Contributions

Nachiket R. Naik: Conceptualization (equal); Data curation (equal); Investigation (equal); Methodology (equal); Writing – original draft (equal); Writing – review & editing (equal). Bekari Gabritchidze: Data curation (equal); Methodology (equal). Justin H. Chen: Data curation (supporting); Writing – review & editing (equal). Kieran A. Cleary: Project administration (equal); Writing – review & editing (equal). Jacob Kooi: Funding acquisition (equal); Methodology (equal); Writing – review & editing (equal). Austin J. Minnich: Conceptualization (equal); Data curation (equal); Funding acquisition (equal); Methodology (equal); Project administration (equal); Supervision (equal); Writing – original draft (equal); Writing – review & editing (equal).

Data Availability

The data that support the findings of this study are available from the corresponding author upon reasonable request.

Conflict of Interest

The authors have no conflicts to disclose.

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Additional details

Identifiers Funding
ISSN
1089-7550
National Science Foundation
ECCS-1911926
Jet Propulsion Laboratory
President and Director's Research and Development Fund 107978
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10.1063/5.0210218
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10.1063/5.0210218

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Resource type
Journal Article
Publisher
American Institute of Physics
Published in
Journal of Applied Physics, 135(16), 164501, ISSN: 0021-8979.
Languages
English

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Created:
April 24, 2024
Modified:
April 25, 2025
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