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T.D. Onstein

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Exploring the Limits of CMOS High-Speed Low-Noise Current Sensing

Master thesis (2024) - T.D. Onstein, C.J.M. Verhoeven, A.J.M. Montagne, G. van der Horn, A. Jouyaeian, Q. Fan
With the rising demand for high-bandwidth, high-resolution current sensors, commonly used Hall-effect devices fall short due to their relatively high wide-band noise. The coil-Hall hybrid architecture addresses this issue by combining the Hall plate with a pick-up coil, known for its high SNR at high frequencies. This CMOS-compatible architecture achieves excellent noise and bandwidth performance while maintaining the ability to sense DC signals. However, this performance comes at the cost of increased complexity in combining, calibrating, and stabilizing the two distinct signal paths. This thesis thoroughly investigates the various challenges and trade-offs associated with this architecture and provides a comprehensive overview of potential system solutions. Additionally, the insights gained were used to design a prototype chip for SystematIC Design B.V. Seeking to reduce complexity, this led to the invention of a new system architecture. This new architecture effectively overcomes several challenging trade-offs that have hindered existing designs until now and is considered a promising approach for achieving even better performance in the future. ...
As electromagnetic waves cannot propagate sufficiently far in water, underwater communication is mainly performed using either acoustics or optics. However, none of these technologies have been proven to be completely effective in every situation. Therefore, research in new underwater communication systems can still bring large benefits to a wide range of different underwater technologies.
During this project, a promising new type of underwater communication system based on electric fields has been investigated. While two subgroups have been working on the characterization of the communication channel and different modulation techniques, this thesis focuses on the hardware needed for optimal communication. Moreover, this hardware includes both a low-noise receiver and a high power transmitter. An analysis of different design options, the detailed design of one of these options and the validation of the design are given in this report. However, to get a complete overview of the designed communication system and its performance, it is recommended to also read the other two thesis reports.
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