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What are some new devices in electronics that are based on physics principles? 


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New devices in electronics that are based on physics principles include nanoelectronic devices or memristors, spintronic devices, Schottky barrier field-effect transistors, and thin-film superconducting devices. BiFe$\rm O_{3}$ (BFO)-based electroforming-free memristors have attracted attention for their excellent properties and have been investigated for use in physical unclonable function (PUF) key storage modules, artificial synapses in neural networks, nonvolatile resistive switches, and reconfigurable logic applications . Spintronic devices, such as the magneto-electric spin-orbit (MESO) device, offer energy efficiency and compatibility with CMOS, and have been implemented in buffers, oscillators, and majority gates . Schottky barrier field-effect transistors and dual gated reconfigurable field-effect transistors have a closed-form and physics-based compact model for calculating their DC characteristics . Thin-film superconducting devices are being developed for ultra-low-noise techniques in radio to far-infrared wavelengths, with advancements in passive circuits, detectors, and amplifiers .

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The paper discusses the development of thin-film superconducting devices for quantum sensors and electronics in fundamental physics. It mentions the need for refinements in existing technology and innovation, but does not specifically mention new devices based on physics principles.
The paper discusses new devices in electronics based on physics principles, such as memristors, resistive memories, quantum memristive systems, and unconventional computing hardware.
The paper discusses the physics-based models for magneto-electric spin-orbit (MESO) devices, which are promising beyond-CMOS devices based on spintronic principles.
The provided paper discusses the use of BiFeO3 (BFO)-based memristors for hardware security applications, such as physical unclonable function (PUF) key storage modules. It does not mention any other new devices in electronics based on physics principles.

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