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The evolution of ionic polymer metal composites towards greener transducers.

, , , and . IEEE Instrum. Meas. Mag., 22 (5): 30-35 (2019)

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Thermal, Mechanical and Electrical Investigation of Elastomer-Carbon Black Nanocomposite Piezoresistivity., , , , and . Sensors, volume 539 of Lecture Notes in Electrical Engineering, page 237-250. Springer, (2018)An Eco-Friendly Disposable Plasmonic Sensor Based on Bacterial Cellulose and Gold., , , , , , and . Sensors, 19 (22): 4894 (2019)Study of an ionic polymer-metal composite based flowmeter., , , , and . I2MTC, page 1-6. IEEE, (2016)Investigation on the Role of Ionic Liquids in the Output Signal Produced by Bacterial Cellulose-Based Mechanoelectrical Transducers., , , , and . Sensors, 21 (4): 1295 (2021)Pullulan-1-Ethyl-3-Methylimidazolium Tetrafluoroborate Composite as a Water-Soluble Active Component of a Vibration Sensor., , , and . Sensors, 24 (4): 1176 (February 2024)Green Energy Harvester from Vibrations Based on Bacterial Cellulose., , , , , and . Sensors, 20 (1): 136 (2020)A Piezoresistive Bacterial Cellulose- based Sensor for Axial Displacement Measurements., , , and . SSD, page 126-129. IEEE, (2020)An LSPR Sensor based on a thin slab waveguide of bacterial cellulose., , , , , , and . I2MTC, page 1-5. IEEE, (2020)A Comparative Investigation of Deformation Transducers Based on Bacterial Cellulose and Different Ionic Liquids., , , , , , and . I2MTC, page 1-5. IEEE, (2023)Conditioning of Bacterial Cellulose-based Motion Sensors., , , , and . I2MTC, page 1-5. IEEE, (2021)