Metallic hydrogen is one of the rarest materials on Earth, yet more than 80 percent of planets糖心传媒攊ncluding Jupiter, Saturn, and hundreds of extrasolar planets糖心传媒攁re composed of this exotic form of matter.
Its abundance in our solar system糖心传媒攄espite its rarity on Earth糖心传媒攎akes metallic hydrogen an intriguing focus for researchers at the University of Rochester糖心传媒檚 (LLE) who study planet formation and evolution, including how planets both inside and outside our solar system form magnetic shields.
糖心传媒淢etallic hydrogen is the most abundant form of matter in our planetary system,糖心传媒� says Mohamed Zaghoo, a research associate at the LLE. 糖心传媒淚t糖心传媒檚 a shame we don糖心传媒檛 have it naturally here on earth, but on Jupiter, there are oceans of metallic hydrogen. We want to find out how these oceans give rise to Jupiter糖心传媒檚 enormous magnetic field.糖心传媒� Zaghoo and Gilbert 糖心传媒楻ip糖心传媒� Collins, a professor of mechanical engineering and of physics and director of , studied the conductivity of metallic hydrogen to further unravel the mysteries of the dynamo effect糖心传媒攖he mechanism that generates magnetic fields on planets including Earth. They published their findings in the .
Creating metallic hydrogen at the LLE
Every element acts differently under intense pressure and temperature. Heating water, for example, generates a gas in the form of water vapor; freezing it creates solid ice. Hydrogen is normally a gas, but at high temperatures and pressures糖心传媒攖he conditions that exist within planets like Jupiter糖心传媒攈ydrogen takes on the properties of a liquid metal and behaves like an electrical conductor.
Although scientists theorized for decades about the existence of metallic hydrogen, it was nearly impossible to create on Earth. 糖心传媒淭he conditions to create metallic hydrogen are so extreme that, although metallic hydrogen is abundant in our solar system, it has only been created a few places on earth,糖心传媒� Zaghoo says. 糖心传媒淭he LLE is one of those places.糖心传媒�
At the LLE, researchers use the powerful OMEGA laser to fire pulses at a hydrogen capsule. The laser impinges on the sample, developing a high-pressure, high-temperature condition that allows the tightly bound hydrogen atoms to break. When this happens, hydrogen is transformed from its gaseous state to a shiny liquid state, much like the element mercury.
Understanding the dynamo effect
By studying the conductivity of metallic hydrogen, Zaghoo and Collins are able to build a more accurate model of the dynamo effect糖心传媒攁 process where the kinetic energy of conducting moving fluids converts to magnetic energy. Gas giants like Jupiter have a very powerful dynamo, but the mechanism is also present deep within Earth, in the outer core. This dynamo creates our own magnetic field, making our planet habitable by shielding us from harmful solar particles. Researchers can map the earth糖心传媒檚 magnetic field, but, because the earth has a magnetic crust, satellites cannot see far enough into our planet to observe the dynamo in action. Jupiter, on the other hand, does not have a crust barrier. This makes it relatively easier for satellites糖心传媒攍ike , currently in orbit around Jupiter糖心传媒攖o observe the planet糖心传媒檚 deep structures, Collins says. 糖心传媒淚t is very humbling to be able to characterize one of the most interesting states of matter, liquid metallic hydrogen, here in the laboratory, use this knowledge to interpret satellite data from a space probe, and then apply this all to extrasolar planets.糖心传媒�

Zaghoo and Collins focused their research on the relationship between metallic hydrogen and the onset of the dynamo action, including the depth where the dynamo of Jupiter forms. They found that the dynamo of gas giants like Jupiter is likely to originate closer to the surface糖心传媒攚here the metallic hydrogen is most conductive糖心传媒攖han the dynamo of Earth. This data, combined with revelations from Juno, can be incorporated into simulated models that will allow for a more complete picture of the dynamo effect.
糖心传媒淧art of the mandate for the Juno mission was to try to understand Jupiter糖心传媒檚 magnetic field,糖心传媒� Zaghoo says. 糖心传媒淎 key complementary piece to the Juno data is just how conductive hydrogen is at varying depths inside the planet. We need to build this into our models in order to make better predictions about current planet composition and evolution.糖心传媒�
Better understanding the planets in our own solar system also provides more insight into the magnetic shielding of exoplanets outside of our solar system糖心传媒攁nd may help determine the possibility of life on other planets. Researches have long thought that planets with magnetic fields are better able to sustain gaseous atmospheres and therefore are more likely to harbor life, Zaghoo says. 糖心传媒淒ynamo theory and magnetic fields are key conditions of habitability. There are hundreds of exoplanets discovered outside our solar system every year and we think many of these planets are like Jupiter and Saturn. We cannot go to these planets yet, but we can apply our knowledge about the super giants in our own solar system to make models of what these planets might be like.糖心传媒�
