Stretchable pumps for soft machines.

Cacucciolo, Vito; Shintake, Jun; Kuwajima, Yu; Maeda, Shingo; Floreano, Dario; Shea, Herbert · Nature · 2019

basic_science · Level V

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Abstract

Machines made of soft materials bridge life sciences and engineering<sup>1</sup>. Advances in soft materials have led to skin-like sensors and muscle-like actuators for soft robots and wearable devices<sup>1-3</sup>. Flexible or stretchable counterparts of most key mechatronic components have been developed<sup>4,5</sup>, principally using fluidically driven systems<sup>6-8</sup>; other reported mechanisms include electrostatic<sup>9-12</sup>, stimuli-responsive gels<sup>13,14</sup> and thermally responsive materials such as liquid metals<sup>15-17</sup> and shape-memory polymers<sup>18</sup>. Despite the widespread use of fluidic actuation, there have been few soft counterparts of pumps or compressors, limiting the portability and autonomy of soft machines<sup>4,8</sup>. Here we describe a class of soft-matter bidirectional pumps based on charge-injection electrohydrodynamics<sup>19</sup>. These solid-state pumps are flexible, stretchable, modular, scalable, quiet and rapid. By integrating the pump into a glove, we demonstrate wearable active thermal management. Embedding the pump in an inflatable structure produces a self-contained fluidic 'muscle'. The stretchable pumps have potential uses in wearable laboratory-on-a-chip and microfluidic sensors, thermally active clothing and autonomous soft robots.

Medical subject headings