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MeSH Review

Electric Power Supplies

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High impact information on Electric Power Supplies

  • Rechargeable solid-state batteries have long been considered an attractive power source for a wide variety of applications, and in particular, lithium-ion batteries are emerging as the technology of choice for portable electronics [1].
  • A photoactive molecular triad as a nanoscale power supply for a supramolecular machine [2].
  • All the analysis steps including injection, preconcentration, and separation of the ITP-GE process were performed continuously, controlled by a high-voltage power source with sequential voltage switching between the analysis steps [3].
  • Two power supplies are connected to the ends of the outer low-conductivity coating of the capillary which is formed by the dispersion of copolymer of aniline and p-phenylenediamine in polystyrene matrix [4].
  • Power supply is through an abdominal drive line or postauricular titanium pedestal according to the treatment strategy [5].

Biological context of Electric Power Supplies


Associations of Electric Power Supplies with chemical compounds


Gene context of Electric Power Supplies

  • Cardiac pacing and pacemakers VII. Power sources for implantable pacemakers. Part I [14].
  • With the same weight, as much as 14 hours of operation appear achievable with the proton exchange membrane (PEM) fuel cell power source [15].
  • The AGS (fully charged to 2.0 V) was used as the power source for a pulse generator circuit built using commercially available CMOS IC [16].
  • An example implementation, based on standard low-power op amps and a single 5-V power supply, accepts input offset voltages up to +/-500 mV, yields a CMRR of 102 dB at 50 Hz, and provides, in accordance with the AAMI EC38 standard, a reset behavior for recovering from overloads or artifacts [17].
  • Colour measurements were made while increasing the power source potential from 2-3 volts (v) in increments of 0.1 v. Light field measurements were made with a mm increment ruler mounted on the base of the test fixture [18].

Analytical, diagnostic and therapeutic context of Electric Power Supplies


  1. Nano-sized transition-metal oxides as negative-electrode materials for lithium-ion batteries. Poizot, P., Laruelle, S., Grugeon, S., Dupont, L., Tarascon, J.M. Nature (2000) [Pubmed]
  2. A photoactive molecular triad as a nanoscale power supply for a supramolecular machine. Saha, S., Johansson, E., Flood, A.H., Tseng, H.R., Zink, J.I., Stoddart, J.F. Chemistry (Weinheim an der Bergstrasse, Germany) (2005) [Pubmed]
  3. On-line isotachophoretic preconcentration and gel electrophoretic separation of sodium dodecyl sulfate-proteins on a microchip. Huang, H., Xu, F., Dai, Z., Lin, B. Electrophoresis (2005) [Pubmed]
  4. Capillary zone electrophoresis with electroosmotic flow controlled by external radial electric field. Kasicka, V., Prusík, Z., Sázelová, n.u.l.l., Brynda, E., Stejskal, J. Electrophoresis (1999) [Pubmed]
  5. Implant technique for the Jarvik 2000 Heart. Westaby, S., Frazier, O.H., Pigott, D.W., Saito, S., Jarvik, R.K. Ann. Thorac. Surg. (2002) [Pubmed]
  6. Comparison of three power supplies used for the single-cell gel assay. Vrzoc, M., Petras, M. Environ. Mol. Mutagen. (1996) [Pubmed]
  7. Reductive transformation of TNT by Escherichia coli: pathway description. Yin, H., Wood, T.K., Smets, B.F. Appl. Microbiol. Biotechnol. (2005) [Pubmed]
  8. The importance of patients' nutritional status in wound healing. Russell, L. British journal of nursing (Mark Allen Publishing) (2001) [Pubmed]
  9. Effects of solution pH and electrical parameters on hydroxyapatite coatings deposited by a plasma-assisted electrophoresis technique. Nie, X., Leyland, A., Matthews, A., Jiang, J.C., Meletis, E.I. J. Biomed. Mater. Res. (2001) [Pubmed]
  10. Integrated implantable device for long-term glucose monitoring. Wilkins, E., Atanasov, P., Muggenburg, B.A. Biosensors & bioelectronics. (1995) [Pubmed]
  11. Transepidermal transport enhancement of insulin by lipid extraction and iontophoresis. Rastogi, S.K., Singh, J. Pharm. Res. (2002) [Pubmed]
  12. High-stability tungsten lamp power supply for spectrophotometers. Edstrom, R.D. Anal. Biochem. (1977) [Pubmed]
  13. An economic "power supply" using a diode for agarose and polyacrylamide gel electrophoresis. Kadokami, Y., Takao, K., Saigo, K. Anal. Biochem. (1984) [Pubmed]
  14. Cardiac pacing and pacemakers VII. Power sources for implantable pacemakers. Part I. Parsonnet, V. Am. Heart J. (1977) [Pubmed]
  15. A small portable proton exchange membrane fuel cell and hydrogen generator for medical applications. Adlhart, O.J., Rohonyi, P., Modroukas, D., Driller, J. ASAIO journal (American Society for Artificial Internal Organs : 1992) (1997) [Pubmed]
  16. Feasibility of using the automatic generating system for quartz watches as a leadless pacemaker power source. Goto, H., Sugiura, T., Harada, Y., Kazui, T. Medical & biological engineering & computing. (1999) [Pubmed]
  17. A novel fully differential biopotential amplifier with dc suppression. Spinelli, E.M., Martínez, N., Mayosky, M.A., Pallàs-Areny, R. IEEE transactions on bio-medical engineering. (2004) [Pubmed]
  18. An assessment of the luminance and light field characteristics of used direct laryngoscopes. Crosby, E., Cleland, M. Canadian journal of anaesthesia = Journal canadien d'anesthésie. (1999) [Pubmed]
  19. A highly simplified horizontal electrophoretic apparatus including a handmade power supply and its application. Yoshida, K. Anal. Biochem. (1983) [Pubmed]
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