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Space-based solar power

Adapted from Wikipedia · Adventurer experience

Diagram showing how solar power can be collected in space and sent to Earth.

Space-based solar power is an idea where we collect energy from the Sun in space using special satellites and send it to Earth. Because space has no air, these satellites can collect solar power better than panels on Earth. They change sunlight into other types of energy, like microwaves, which can travel through the air to special receivers on our planet.

NASA Integrated Symmetrical Concentrator SPS concept

In the 1970s, groups like the L5 Society began talking about using this technology for everyday energy needs. Later, people realized it could also help protect us. This idea helped shape big projects in the 1980s, such as the Strategic Defense Initiative.

Recently, important tests have been done to see if this idea works. In May 2020, the US Naval Research Laboratory tested solar power generation in a satellite. In 2023, a project called MAPLE, supported by Donald Bren and his wife Brigitte, showed that it is possible to send power from space to Earth.

History

In 1941, the writer Isaac Asimov wrote a story where a space station collects energy from the Sun and sends it to planets. In 1958, the satellite Vanguard I used solar panels to power its radio. The idea of space-based solar power was first described in 1968. In 1973, Peter Glaser got a patent for sending power over long distances using microwaves. He worked with Arthur D. Little, Inc., and NASA studied the idea more in 1974. They found it had problems, like cost, but thought it was worth studying more.

A laser pilot beam guides the microwave power transmission to a rectenna

From 1978 to 1986, the Congress and the Department of Energy worked with NASA to study this idea more. They spent money and made many reports. The project stopped after the 1980 United States elections because there wasn’t enough information to decide if it was a good idea.

As of 2020, several countries like Japan, China, Russia, India, the United Kingdom, the US, and the European Space Agency are working on space-based solar power. In 2008, Japan made it a national goal. In 2015, China showed plans to build a space solar power station. They started building a testing base in 2019 and plan to launch a big station by 2035.

Artist's concept of a solar power satellite in place. Shown is the assembly of a microwave transmission antenna. The solar power satellite was to be located in a geosynchronous orbit, 35,786 kilometres (22,236 mi) above the Earth's surface. NASA 1976

In 1999, NASA started a program to explore space solar power. They wanted to study how it could work and make designs for future technology. They looked at different ways to turn sunlight into electricity and send it to Earth. They thought space solar power might be a good option for the future because of its environmental benefits, but it needs cheaper ways to get materials into space to be practical.

In 2015, the Japan Aerospace Exploration Agency (JAXA) showed they could send power wirelessly over short distances. A company called Aetherflux is also working on this idea but changed its focus to data centers in space in December 2025.

Advantages and disadvantages

Space-based solar power has many good points. In space, the sun shines all day, every day, without clouds or atmosphere blocking the light. This means we can collect much more energy than we can on Earth. We could also send this energy where it is needed most, and it would not harm plants, animals, or add pollution to our air or water.

However, there are also some challenges. It costs a lot of money to build and send satellites into space. Keeping these satellites working can be hard because they are far away and we cannot reach them easily. Space is a tough place for machines, and old satellites could become space junk that floats around and hits other satellites. The ground stations to receive the energy would also be very large and expensive. There are also some losses of energy during the process of turning sunlight into usable power.

Design

Artist's concept of a solar disk on top of a LEO to GEO electrically powered space tug.

Space-based solar power has three main parts:

  1. Collecting sunlight in space with mirrors or special cells.
  2. Sending the collected energy to Earth as invisible waves.
  3. Receiving the energy on Earth with special antennas.
Comparison of laser and microwave power transmission. NASA diagram

In space, these systems don't have to deal with weather or gravity, but they must handle space dangers. Scientists have studied two ways to change sunlight into usable energy: using special cells that turn light into electricity, or using mirrors to heat water and create steam power. Sending energy to Earth as invisible waves has been tested and shown to work.

Design of a sun-synchronous orbit data center, they would orbit above the dawn / dusk transition of the planet.

One way to send energy from space uses invisible waves called microwaves. Tests have shown this works well over long distances. Another way uses lasers, which are beams of light. Lasers could be useful for powering equipment on the Moon or Mars.

Putting solar power stations in a special orbit around Earth makes it easier to keep them pointed correctly. On Earth, the energy would be received by large antenna systems made of many small parts. These systems could also help power spaceships or bases on other planets.

Launch costs

One big problem with space-based solar power is that it costs a lot to send things into space. We would need to send up a lot of material.

Many materials don’t need to get to their final place right away. This means we could use slower but better engines to move them. We could use ion thrusters or nuclear propulsion. Building what we need—like solar panels, power converters, and transmitters—will be very expensive. Keeping everything working will cost even more.

To see how big this problem is, let’s look at an example. If a solar panel weighs about 20 kilograms for every kilowatt of power it makes, a power station that can give out 4 gigawatts would weigh around 80,000 metric tons. That’s all the weight we would need to launch from Earth right now. This is much heavier than what we usually send into space. As of 2015, spacecraft we’ve already flown weigh about 150 watts per kilogram. With new, lighter designs, we might get this down to just 1 kilogram per kilowatt. This would mean the solar panels alone would weigh about 4,000 metric tons for the same 4-gigawatt station. We also need to add extra weight for moving the panels into the right place and keeping them there.

When we think about these costs, we should also remember the effects of launching so much material into space. For comparison, building a new coal or nuclear power plant on Earth costs between $3 billion and $6 billion for each gigawatt of power it can produce—though this doesn’t include all the environmental costs.

Launch costs for 4 GW to LEO
1 kg/kW5 kg/kW20 kg/kW
$1/kg (Minimum cost at ~$0.13/kWh power, 100% efficiency)$4M$20M$80M
$2000/kg (ex: Falcon Heavy)$8B$40B$160B
$10000/kg (ex: Ariane V)$40B$200B$800B

Building from space

Gerard O'Neill thought we could build solar power stations in space using materials from the Moon. The Moon has less gravity and no atmospheric drag, so it would be easier and cheaper to launch things from there.

Later, a new plan used machines on the Moon that could work by themselves, controlled from Earth. This would need fewer people in space. The Moon’s lower gravity would help save energy.

Physicist Dr David Criswell also thinks the Moon is the best place for these solar power stations. He believes we could build them using materials from the Moon, which would save even more money. This plan includes special machines that move around to build parts and send the power to Earth.

Some ideas talk about getting materials from asteroids. One study looked at using a big machine in space to bring back a piece of an asteroid. This could lower launch costs, but we still need to learn more about asteroids before we can use this idea. Some suggestions include using asteroids like Apophis or 1999 AN10 to build many solar power stations.

Safety

One big worry with space solar power is how the strong microwave beams might affect people and animals on Earth. Even though the strength of these beams is lower than sunlight, microwaves can go deeper into our bodies.

To keep everyone safe, special designs are suggested to prevent the beam from pointing in the wrong direction. Aircraft can protect passengers inside, and controlled airspace can help keep other smaller aircraft away. Scientists are also studying how to make sure wildlife stays safe. One idea is to place the receiving stations far from land.

A safe method being studied uses a special system to keep the beam focused only where it should be. If anything goes wrong and the beam loses its guide signal, it automatically spreads out, preventing harm to anything outside the intended area. More research is still needed.

Timeline

In the 20th century

  • 1941: Isaac Asimov wrote a story about a space station sending energy from the sun to planets.
  • 1968: Peter Glaser introduced the idea of a satellite with solar panels in space to collect energy.
  • 1973: Peter Glaser received a patent for sending power over long distances.
  • 1978–1981: The United States Department of Energy and NASA studied the idea of satellites that collect solar power.
  • 1987: Canada did an experiment called Stationary High Altitude Relay Platform.
  • 1995–1997: NASA looked again at ideas for collecting solar power in space.
  • 1998: A study showed that satellites collecting solar power could work, but there were some challenges.
  • 1998: Japan's space agency started working on a system to collect solar power from space.
  • 1999: NASA began a program to explore space solar power.
  • 2000: A NASA expert said that making these satellites work would need many new technologies.

In the 21st century

  • 2001: Japan planned to launch a small test satellite to collect solar power.
  • 2003: Europe studied the idea.
  • 2007: The US Pentagon said they wanted to get solar power from space.
  • 2007: A workshop was held at MIT to discuss space solar power.
  • 2010: Professors announced a special session on sending solar power through the air.
  • 2010: India and the US started working together on collecting solar power from space.
  • 2010: A book about space solar power was published.
  • 2012: China suggested working with India on a solar power satellite.
  • 2015: Caltech and Northrop Grumman started a project to develop a space solar power system.
  • 2015: Japan showed they could send small amounts of power from space to a receiver on Earth.
  • 2016: A Chinese general talked about building satellites to collect solar power.
  • 2016: A team from several US groups won a challenge in space solar power.
  • 2016: A group called Citizens for Space-Based Solar Power started petitions to get support.
  • 2016: Researchers showed that building many power satellites would not hurt Earth’s atmosphere too much.
  • 2016: A new idea for a solar power satellite was proposed.
  • 2017: NASA chose five new research ideas, including one about space solar power.
  • 2019: Researchers in Japan proposed a group of small satellites to send power.
  • 2019: China made a test center and planned to launch a big solar power station by 2035.
  • 2020: The US Naval Research Laboratory launched a test satellite. The US Air Force planned to launch a test satellite in 2024.
  • 2021: Caltech planned to launch a test array by 2023.
  • 2022: The UK planned to launch the first space power station by the mid-2040s.
  • 2022: The European Space Agency proposed a program called SOLARIS to start using solar power satellites from 2030.
  • 2023: Caltech’s test satellite sent a small amount of power to Earth.
  • 2025: Researchers in London estimated that by 2050, space solar power could provide most of Europe’s renewable energy.

Non-typical configurations and architectural considerations

The usual idea for space-based solar power uses many big satellites in a special orbit around Earth. These satellites collect sunlight and send energy to places that need it. They are usually about 1 to 10 gigawatts in size and use solar panels to collect energy. They send this energy as radio waves to special receivers on Earth.

There are many other ways this idea could work. Satellites could be placed in different orbits, like closer to the Sun or on the Moon. Different methods to collect energy could be used, such as heating fluid to make steam or using lasers. Some ideas suggest using materials from the Moon or asteroids to build these satellites, or even making them in space using special machines. There are also many ideas for how to get the materials into space and set up the satellites, like using special rockets or even space elevators.

Images

A futuristic design of a solar power station orbiting Mars, featuring large hexagonal solar panels that could provide energy to the Martian surface.
An artist's concept of a future lunar base on the Moon, showing a futuristic settlement for space exploration.
An artist's vision of a self-growing robotic factory on the Moon, designed for future space missions.
Concept illustration of a lunar crawler designed for exploring the Moon's surface.
Diagram showing how solar power could be generated on the Moon and sent to Earth using reflectors, solar cells, and transmitters.
A sketch of a lunar crawler designed for building solar cells on the Moon's surface.
An illustration of a solar power system designed to collect sunlight in space and send energy to Earth.

Related articles

This article is a child-friendly adaptation of the Wikipedia article on Space-based solar power, available under CC BY-SA 4.0.

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