| Literature DB >> 28874766 |
Takashi Tsuchiya1, Masataka Imura2, Yasuo Koide3, Kazuya Terabe4.
Abstract
A magneto-electrochemical cell and an electric double layer transistor (EDLT), each containing diluted [Bmim]FeCl4 solution, have been controlled by applying a magnetic field in contrast to the control of conventional field effect devices by an applied electric field. A magnetic field of several hundred mT generated by a small neodymium magnet is sufficient to operate magneto-electrochemical cells, which generate an electromotive force of 130 mV at maximum. An EDLT composed of hydrogen-terminated diamond was also operated by applying a magnetic field. Although it showed reversible drain current modulation with a magnetoresistance effect of 503%, it is not yet advantageous for practical application. Magnetic control has unique and interesting characteristics that are advantageous for remote control of electrochemical behavior, the application for which conventional electrochemical devices are not well suited. Magnetic control is opening a door to new applications of electrochemical devices and related technologies.Entities:
Year: 2017 PMID: 28874766 PMCID: PMC5585326 DOI: 10.1038/s41598-017-11114-2
Source DB: PubMed Journal: Sci Rep ISSN: 2045-2322 Impact factor: 4.379
Figure 1(a) Illustration of two-terminal electrochemical-cell-type MEC and components of diluted [Bmim]FeCl4 solution. (b) UV-Vis-NIR absorption spectra measured near right electrode (dark brown) and near left electrode (light yellow).
Figure 2(a) Variation in OCV of MEC composed of two Au electrodes (Au/Au) and 50% diluted [Bmim]FeCl4 solution. (b) Maximum EMF dependence on [Bmim]FeCl4 concentration of MECs composed of various electrode materials.
Figure 3(a) Discharge performance (V vs. Q) of MEC with Au/Au electrodes measured under constant current condition (i = 1 μA). Inset shows discharge performance of EDLC (C = 1F) for comparison. (b) Magnetic field dependence of maximum EMF and Q.
Figure 4(a) Illustration of MFET composed of hydrogen-terminated diamond single crystal (100) and 50% diluted [Bmim]FeCl4 solution. (b) Variation in MFET i D in response to magnetic field sweep. (c) Variation in MFET i D in response to magnetic field switching (H = 480 mT).