Solar works, and it has flown: Insight, Phoenix, Opportunity and Spirit all ran on arrays. The failure mode is well documented too — the 2018 planet-encircling dust storm reduced insolation enough to end Opportunity outright. Any solar-only architecture has to carry either storage or backup generation sized for a season of twilight, and that storage is heavier than the arrays.
Fission is the standard answer. NASA's Kilopower project tested the KRUSTY reactor in 2018 at power levels of 1 to 10 kilowatts electric, demonstrating a compact, self-regulating fission system designed specifically for planetary surfaces. Reactors do not care about dust, night, latitude or season, which removes the single largest source of variance from a base's energy budget.
The gap between demonstrated and required is the story. KRUSTY is a ten-kilowatt-class unit. A crewed base with greenhouses, ISRU propellant production and habitat thermal control runs in the hundreds of kilowatts to megawatts. The terraforming systems on this site are worse by orders of magnitude: the halocarbon route needs about 1,000 MWe sustained, and full open-atmosphere terraforming needs hundreds of terawatts.
In practice a base runs hybrid. Solar arrays supply the bulk when conditions allow because they are light and passive; fission supplies the guaranteed floor that keeps life support, heating and the greenhouse running through the night, through winter and through a global storm. Sizing that floor is the single most consequential design decision on a Mars base.
KRUSTY demonstrated a compact self-regulating reactor at 1–10 kWe in 2018, purpose-designed for planetary surfaces rather than adapted from terrestrial plants.
A reactor produces the same output at night, in winter, at high latitude and through a planet-encircling dust storm — removing the largest variance in the energy budget.
Multiple Mars missions have run on arrays for years. Per kilogram delivered, solar remains the cheapest power on the good days.
Arrays for bulk energy, fission for the guaranteed floor. The combination survives the failure mode that killed Opportunity while keeping mass down.
A planet-encircling event can dim the surface for weeks to months. Opportunity did not survive the 2018 storm, and no solar-only base would.
KRUSTY-class units are two to three orders of magnitude below what a crewed base with greenhouses and propellant production needs. Scaling reactors for Mars is unfinished work.
The halocarbon route needs ~1,000 MWe sustained; full terraforming runs to hundreds of terawatts. No plausible surface generation approaches this.
Fissile material has to be launched, radiators sized for a thin atmosphere that carries little heat away, and end-of-life handling planned on a planet with no infrastructure.
| Early base | 10s–100s kWe | Fission floor plus solar |
| Mature settlement | MW-scale | Greenhouses and ISRU dominate |
| Gas-factory warming | ~1,000 MWe | Sustained, for decades |
| Full terraforming | 100s TW – PW | Turyshev, 2026 |
Yes, and it has — Opportunity, Spirit, Phoenix and InSight all ran on arrays. But Mars receives only 43% of Earth's sunlight and planet-encircling dust storms can cut output for months, which is what ended Opportunity in 2018.
A compact fission power system NASA developed for planetary surfaces. The KRUSTY test unit was demonstrated in 2018 at 1 to 10 kilowatts electric, self-regulating and designed to operate without a crew.
A crewed base with greenhouses, propellant production and habitat thermal control runs in the hundreds of kilowatts to megawatts — two to three orders of magnitude above the reactors tested so far.