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Millimeter-Scale Fuel Cell With Onboard Fuel and Passive Control System

Saeed Moghaddam, Eakkachai Pengwang, Kevin Lin, Richard I. Masel, Mark A. Shannon

Year
2008
Citations
24

Abstract

<para xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink"> We report microfabrication of a millimeter-scale fuel cell with onboard fuel and a passive control mechanism. This unique power source has a total volume of 9 <formula formulatype="inline"><tex Notation="TeX">$\mu\hbox{L}\break(3 \times 3 \times 1\ \hbox{mm}^{3})$</tex></formula>, which makes it the smallest fully integrated fuel cell reported in the literature. The first generation of this device delivered an energy density of 254 <formula formulatype="inline"> <tex Notation="TeX">$\hbox{W} \cdot \hbox{h/L}$</tex></formula>. The device uses a reaction between a metal hydride, <formula formulatype="inline"><tex Notation="TeX">$\hbox{LiAlH}_{4}$</tex></formula>, and water vapor to generate hydrogen in a reactor. The generated hydrogen exits the reactor through a nanoporous silicon wall to reach a hybrid silicon/Nafion membrane electrode assembly. A passive microfluidic control system regulates hydrogen generation through controlled delivery of water vapor to the metal hydride based on the reactor pressure. The development of this unique power source greatly benefits the portable electronics industry and enables future technologies that require significantly high energy density power sources such as cognitive arthropods (“thinking” insect-sized robots). This paper provides details of the device microfabrication processes, component integration, and performance analysis. <formula formulatype="inline"><tex Notation="TeX">$\hfill\hbox{[2008-0168]}$</tex></formula> </para>

Keywords

MicrofabricationHydrideElectrical engineeringMaterials scienceNanotechnologyHydrogenMechanical engineeringPhysicsEngineeringQuantum mechanics

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