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AstroAnt is a robot about 3 cm across, built by the MIT Media Lab’s Space Exploration Initiative, that drives on the outside of another spacecraft [1], [2]. It rode to the Moon on IM-2 mounted on the top surface of the Lunar Outpost MAPP rover, where its task was to measure the temperature of that rover’s radiator from several positions along it.

The premise is symbiotic rather than independent: a miniature robot that lives on the exterior of a larger vehicle, moves across it, and inspects it. The stated longer-term applications are a team of such robots clearing dust from solar panels and checking structures for damage [1]. Nothing about the vehicle is autonomous or self-sufficient; it carries a sensor to a place on another machine that a fixed sensor could not reach.

IM-2 landed on 6 March 2025 with the lander on its side [2]. MAPP was never deployed and AstroAnt never operated.

ParameterValueSource
Sizeabout 3 cm across[1]
Wheels4, magnetic[1], [2]
Attachmentmagnetic adhesion to any ferromagnetic surface[1]
Incline capabilityup to 80 degrees
Sensorthermopile on the underside, contactless temperature
CommunicationsBluetooth Low Energy, robot and central station[2]
Endurancea few hours before recharge[1]

Mass, battery capacity, drive speed, processor and thermal limits are not published, and no peer-reviewed or conference publication about the vehicle has appeared.

ParameterValueSource
Launch27 February 2025[2]
Landing6 March 2025, Mons Mouton
HostLunar Outpost MAPP rover
Taskcontactless temperature of the MAPP radiator from several positions
Outcomehost rover not deployed; no operation

Four magnetic wheels, which is both the drive and the attachment method: the robot holds itself to a ferromagnetic surface by the same wheels it drives on, so it can work on a vertical or inverted surface as readily as a horizontal one [1], [2]. The published capability figure is an incline of up to 80 degrees. Adhesion has been exercised on rough surfaces, on beta cloth simulant, on steel, and on aluminum coated with magnetic paint, which is what makes a non-ferrous spacecraft surface usable [1].

Drive speed and traction are not published, and the surface it was to work on, a rover radiator, is a manufactured plate rather than regolith, so no terramechanics question arises.

An onboard battery giving a few hours of operation before it must be recharged [1]. Capacity, charging method and the recharge interface are not published.

Not published, which is the notable gap for a robot whose task is to sit on a radiator in lunar daylight and whose measurement is a temperature.

Not published.

Not described. The robot and a central station on the host vehicle communicate over Bluetooth Low Energy, and the station is the path back to the ground [2].

Bluetooth Low Energy between the robot and a central station carried on the host rover, with the station relaying through the host [2]. Data rate and range are not published.

A single thermopile on the underside of the robot, giving contactless temperature readings of whatever it is standing over [1], [2]. The measurement it was flown to make is the performance of the MAPP rover’s thermal radiator, sampled at several points across the radiator rather than at the one place a fixed sensor would occupy, which is the entire argument for making the sensor mobile.

The sensor payload is modular, so the same chassis can be fitted for a different inspection task [1].

Not published.

Not published beyond the robot-to-station-to-host communications path [2].

The design point is the contribution: a mobile, magnetically adhering robot at 3 cm scale with a sensor, a radio and a battery, able to hold and drive on an 80 degree incline, and able to grip an aluminum surface treated with magnetic paint rather than requiring a ferrous one [1]. Reduced gravity behavior was addressed before flight rather than assumed: the Media Lab flew AstroAnt on four parabolic flights with NASA during 2021, including lunar-gravity and zero-gravity segments, and tested adhesion across rough surfaces, beta cloth simulant, steel and painted aluminum [1], [2]. No results from those flights have been published.

References

  1. (2026). MIT Media Lab: AstroAnt. media.mit.edu/projects/astroant-1/overview (accessed 2026-09-02)
    BibTeX
    @misc{mitmedialabastroant,
      title = {MIT Media Lab: AstroAnt},
      howpublished = {\url{https://www.media.mit.edu/projects/astroant-1/overview/}},
      organization = {media.mit.edu},
      year = {2026},
      urldate = {2026-09-02}
    }
  2. (2026). MIT To The Moon To Stay: AstroAnt Payload. tothemoon.mit.edu/astroant (accessed 2026-09-02) archived copy
    BibTeX
    @misc{mittothemoontostayastroant,
      title = {MIT To The Moon To Stay: AstroAnt Payload},
      howpublished = {\url{https://www.tothemoon.mit.edu/astroant}},
      organization = {tothemoon.mit.edu},
      year = {2026},
      urldate = {2026-09-02}
    }

Further reading

  • NASA. (2020). Cross-Program Design Specification for Natural Environments (DSNE), Revision G. NASA Marshall Space Flight Center. Source
  • Grant H. Heiken, David T. Vaniman and Bevan M. French. (1991). Lunar Sourcebook: A User's Guide to the Moon. Cambridge University Press. Source