Title :
A High-Efficiency DC–DC Boost Converter for a Miniaturized Microbial Fuel Cell
Author :
Xu Zhang ; Hao Ren ; Soonjae Pyo ; Jae-Ik Lee ; Jongbaeg Kim ; Junseok Chae
Author_Institution :
Sch. of Electr. Comput. & Energy Eng., Arizona State Univ., Tempe, AZ, USA
Abstract :
This paper presents a high-efficiency dc-dc boost converter to interface a miniaturized 50 μL microbial fuel cell (MFC) having 1 cm2 vertically aligned carbon nanotube anode and 1 cm2 Cr/Au cathode. Geobacteraceae-enriched mixed bacterial culture in growth medium and 100 mM buffered ferricyanide solutions are used as the anolyte and catholyte, respectively. The miniaturized MFC produces up to approximately 10 μW with an output voltage of 0.4-0.7 V. Such low voltage, which is also load dependent, prevents the MFC to directly drive low power electronics. A pulse-frequency modulation type dc-dc converter in discontinuous conduction mode is designed and implemented to address the challenges and provides a load independent output voltage with high conversion efficiency. The fabricated dc-dc converter in UMC 0.18 μm has been tested with the MFC. At 0.9 V output, the converter has a peak efficiency of 85% with 9 μW load.
Keywords :
DC-DC power convertors; carbon nanotubes; electrochemical electrodes; electrolytes; microbial fuel cells; MFC; carbon nanotube anode; chromium cathode; discontinuous conduction mode; ferricyanide solutions; geobacteraceae-enriched mixed bacterial culture; gold cathode; high-efficiency DC-DC boost converter; miniaturized microbial fuel cell; power 9 muW; pulse-frequency modulation; voltage 0.4 V to 0.7 V; voltage 0.9 V; Capacitors; Inductance; Inductors; MOS devices; Oscillators; Switches; Voltage control; DC-DC power converters; energy efficiency; fuel cells; integrated circuits; switching converters;
Journal_Title :
Power Electronics, IEEE Transactions on
DOI :
10.1109/TPEL.2014.2323075