A bio-hybrid odor-guided autonomous palm-sized air vehicle

Melanie Anderson, Joseph Garret Sullivan, Timothy K. Horiuchi, Sawyer B. Fuller, Thomas L. Daniel

Bioinspiration & Biomimetics · 2020 · 61 citations · 35 references

TL;DR

Biohybrid systems combine living materials with synthetic devices to tackle engineering challenges, and detecting and localizing airborne volatile chemicals—an ability many flying animals use for survival—could enable robots to safely locate disaster survivors, gas leaks, fires, or explosives. The study aims to develop a palm‑sized autonomous air vehicle that uses an insect odor‑sensing antenna to rapidly detect airborne chemicals and navigate toward their source. The vehicle integrates an insect antenna for odor sensing, additional navigational sensors, and passive wind fins, enabling autonomous upwind orientation and obstacle avoidance. The robot successfully orients upwind and autonomously navigates toward odor sources in confined spaces, outperforming metal‑oxide sensors with faster insect‑antenna responses and avoiding obstacles.

Abstract

Abstract Biohybrid systems integrate living materials with synthetic devices, exploiting their respective advantages to solve challenging engineering problems. One challenge of critical importance to society is detecting and localizing airborne volatile chemicals. Many flying animals depend their ability to detect and locate the source of aerial chemical plumes for finding mates and food sources. A robot with comparable capability could reduce human hazard and drastically improve performance on tasks such as locating disaster survivors, hazardous gas leaks, incipient fires, or explosives. Three advances are needed before they can rival their biological counterparts: (1) a chemical sensor with a much faster response time that nevertheless satisfies the size, weight, and power constraints of flight, (2) a design, sensor suite, and control system that allows it to move toward the source of a plume fully autonomously while navigating obstacles, and (3) the ability to detect the plume with high specificity and sensitivity among the assortment of chemicals that invariably exist in the air. Here we address the first two, introducing a human-safe palm-sized air vehicle equipped with the odor-sensing antenna of an insect, the first odor-sensing biohybrid robot system to fly. Using this sensor along with a suite of additional navigational sensors, as well as passive wind fins, our robot orients upwind and navigates autonomously toward the source of airborne plumes. Our robot is the first flying biohybrid system to successfully perform odor localization in a confined space, and it is able to do so while detecting and avoiding obstacles in its flight path. We show that insect antennae respond more quickly than metal oxide gas sensors, enabling odor localization at an improved speed over previous flying robots. By using the insect antennae, we anticipate a feasible path toward improved chemical specificity and sensitivity by leveraging recent advances in gene editing.

References

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