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Single-Cycle-PLL Detection for Real-Time FM-AFM Applications.

, , , , , and . IEEE Trans. Biomed. Circuits Syst., 8 (2): 206-215 (2014)

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Components for high-speed atomic force microscopy optimized for low phase-lag., , , , and . AIM, page 731-736. IEEE, (2017)A transimpedance amplifier using a widely tunable PVT-independent pseudo-resistor for high-performance current sensing applications., , , , , and . ESSCIRC, page 79-82. IEEE, (2017)An Analog High-Speed Single-Cycle Lock-in Amplifier for Next Generation AFM Experiments., , , , and . IEEE SENSORS, page 1-4. IEEE, (2018)A vibration suppression approach to high-speed atomic force microscopy., , , and . ACC, page 3797-3802. IEEE, (2012)Novel electronics for high-speed FM-AFM in life science applications., , , and . ECCTD, page 1-4. IEEE, (2013)Single-Cycle-PLL Detection for Real-Time FM-AFM Applications., , , , , and . IEEE Trans. Biomed. Circuits Syst., 8 (2): 206-215 (2014)A 0.1% THD, 1-MΩ to 1-GΩ Tunable, Temperature-Compensated Transimpedance Amplifier Using a Multi-Element Pseudo-Resistor., , , , and . IEEE J. Solid State Circuits, 53 (7): 1913-1923 (2018)Design and modeling of a high-speed scanner for atomic force microscopy., , , , , , and . ACC, IEEE, (2006)Automatic lateral resonance identification from cantilever deflection information in high speed atomic force microscopy., , and . ACC, page 3240-3246. IEEE, (2012)Comparison of Different Precision Pseudo Resistor Realizations in the DC-Feedback of Capacitive Transimpedance Amplifiers., , , , , , and . ICECS, page 699-702. IEEE, (2019)