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Jennifer T. Heath

Publications and source records attributed to Jennifer T. Heath.

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Reducing non-linear effects in Kelvin Probe Force Microscopy of back-gated 2D semiconductors

In 2D field effect transistors the gate electrostatically dopes the 2D semiconductor (2DSC) channel, tuning the Fermi level. In principle, Kelvin probe force microscopy (KPFM) can detect the Fermi level, and its dependence on gate bias as well as position, potentially directly yielding band gaps, contact barriers, spatial nonuniformities, and sub-gap densities of states in such devices. However, KPFM relies on an oscillating probe voltage which itself electrostatically dopes the 2DSC, potentially creating a nonlinear response. Here, we show that when a suitably thin hBN back-gate dielectric is used, the KPFM signal agrees well with expectations, as explained by a quasistatic charge-balance model. Corresponding experimental results are consistent with the literature values of the bandgaps of monolayer and trilayer WSe2. With this approach, the widely available technique of KPFM should find improved utility and new uses in the study of 2D devices.

cond-mat.mes-hall

Measuring optical force with a torsion pendulum: a platform for independent student experimentation

In this work, the force due to radiation pressure is measured with sub-10 pN sensitivity, corresponding to less than 2 mW of optical power. The apparatus adds homemade reflectors to a commercial Cavendish balance, which consists of a torsion pendulum with a built-in capacitance position sensor. When driven by four 5 mW laser diodes, with square-wave modulation at the pendulum's natural frequency, the response is strong enough to easily discern in a short time series. The discrete Fourier transform of a longer dataset provides a more in-depth analysis, clearly showing the multiple frequency components from the square-wave driving force. The driving power was controlled by adjusting the square wave duty cycle, allowing easy automation and avoiding additional optics or filters. For a 9-hour dataset, white noise corresponding to about 2 pN was observed, enabling our most sensitive measurements. The pendulum operates in air. To minimize convective forces from differential heating and the resulting differential pressure, we use symmetrical reflectors encased in low-thermal conductivity material, namely, two glass-fronted mirrors attached back-to-back. This experiment could be used in a single lab session, allowing the optical force to be quickly and intuitively observed. It also demonstrates the power of Fourier analysis, builds student intuition about oscillator systems, and provides a compelling platform for student-driven projects.

physics.ed-ph