Autonomic perspiration in 3D-printed hydrogel actuators.

Mishra, Anand K; Wallin, Thomas J; Pan, Wenyang; Xu, Artemis; Wang, Kaiyang; Giannelis, Emmanuel P; Mazzolai, Barbara; Shepherd, Robert F · Sci Robot · 2020

basic_science · Level V

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Abstract

In both biological and engineered systems, functioning at peak power output for prolonged periods of time requires thermoregulation. Here, we report a soft hydrogel-based actuator that can maintain stable body temperatures via autonomic perspiration. Using multimaterial stereolithography, we three-dimensionally print finger-like fluidic elastomer actuators having a poly-<i>N</i>-isopropylacrylamide (PNIPAm) body capped with a microporous (~200 micrometers) polyacrylamide (PAAm) dorsal layer. The chemomechanical response of these hydrogel materials is such that, at low temperatures (<30°C), the pores are sufficiently closed to allow for pressurization and actuation, whereas at elevated temperatures (>30°C), the pores dilate to enable localized perspiration in the hydraulic actuator. Such sweating actuators exhibit a 600% enhancement in cooling rate (i.e., 39.1°C minute<sup>-1</sup>) over similar non-sweating devices. Combining multiple finger actuators into a single device yields soft robotic grippers capable of both mechanically and thermally manipulating various heated objects. The measured thermoregulatory performance of these sweating actuators (~107 watts kilogram<sup>-1</sup>) greatly exceeds the evaporative cooling capacity found in the best animal systems (~35 watts kilogram<sup>-1</sup>) at the cost of a temporary decrease in actuation efficiency.

Medical subject headings