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Revathy Padmanabhan

Publications and source records attributed to Revathy Padmanabhan.

3 recordsLinked to original sources

Analysis of Performance Limits in Current-Matched Tandem Solar Cells

Tandem solar cells are at the forefront of extending the efficiency limits of solar cell technology. Among two-terminal tandems, current-matched (CM) tandem solar cells are of particular interest, owing to their relative ease of fabrication. Though CM tandems have been extensively studied, an analytical framework based on the detailed balance for N-layer CM tandems with area de-coupled subcells has not been addressed. Current matching constraints can be alleviated with the appropriate addition of area de-coupled subcells/modules at each layer. In this work, we propose an analytical framework for modeling the performance limits of an N-layer CM tandem solar cell with subcells across layers. Radiative coupling among cells is taken into account. Analytical expressions for the optimal number of subcells across layers are presented. Additionally, we investigate the impact of bandgap mismatches on efficiency, a critical factor in real-world fabrication due to material and processing variations, demonstrating that subcells enhance robustness against such imperfections. Our work provides useful design guidelines for designing and estimating the performance limits of advanced solar cell architectures and can be extended to voltage-matched and bifacial devices as well.

physics.app-ph

Analysis of Ferroelectric Negative Capacitance-Hybrid MEMS Actuator Using Energy-Displacement Landscape

We propose an energy-based framework to analyze the statics and dynamics of a ferroelectric negative capacitance-hybrid Microelectromechanical System (MEMS) actuator. A mapping function that relates the charge on the ferroelectric to displacement of the movable electrode, is used to obtain the Hamiltonian of the hybrid actuator in terms of displacement. We then use graphical energy-displacement and phase portrait plots to analyze static pull-in, dynamic pull-in and pull-out phenomena of the hybrid actuator. Using these, we illustrate the low-voltage operation of the hybrid actuator to static and step inputs, as compared to the standalone MEMS actuator. The results obtained are in agreement with the analytical predictions and numerical simulations. The proposed framework enables straightforward inclusion of adhesion between the contacting surfaces, modeled using van der Waals force. We show that the pull-in voltage is not affected, while the pull-out voltage is reduced due to adhesion. The proposed framework provides a physics-based tool to design and analyze negative capacitance based low-voltage MEMS actuators.

eess.SY

Analysis of Electrostatic MEMS Using Energy-Charge Landscape

A common way to analyze electrostatic microelectromechanical systems (MEMS) actuators is to use their energy-displacement landscape. Here, we describe an alternative approach to analyze electrostatic MEMS actuators using their energy-charge landscape. This technique involves coordinate transformation from displacement to charge, thereby formulating the Hamiltonian of electrostatic MEMS actuators in terms of charge. We investigate the use of the energy-charge landscape to analyze static pull-in, dynamic pull-in, and pull-out phenomena. The voltage expressions derived using this method are identical with those derived using the conventional energy-displacement landscape. In addition, we also obtain the expressions for charge under static and dynamic pull-in conditions. This work can aid in the design and analysis of electrostatic MEMS devices. As a case study, the analysis of a feedback capacitor-MEMS actuator system is presented to illustrate the application of the energy-charge landscape.

physics.app-ph