东精影业

Skip to content
Reading time: 3 minutes
balloon flying in Antarctica
The GAPS project launch is expected to be similar to this launch of Professor Peter Gorham’s Antarctic Impulsive Transient Antenna experiment in Antarctica in 2018.

The General AntiParticle Spectrometer (GAPS) experiment, which will fly a payload consisting of a balloon as large as a football stadium in the skies over Antarctica, may hold the answer to one of the biggest questions in modern physics—the nature of dark matter in our Galaxy. The experiment by the and others will search for very rare cosmic antimatter. The researchers just received a major multi-million dollar funding boost from NASA, with approximately $900,000 going to the 东精影业 惭ā苍辞补 team.

major system attached to balloon
GAPS experiment payload

Associate Professor Philip von Doetinchem said 东精影业 惭ā苍辞补 is in charge of qualifying parts of the balloon experiment’蝉 detectors and will lead the data analysis. The GAPS team comprises researchers from 东精影业 惭ā苍辞补, Columbia University, UCLA, Massachusetts Institute of Technology (MIT), UC Berkeley and Northeastern University, as well as international partners from Japan and Italy. The 东精影业 team already received about $500,000 from 2017–21, and NASA’蝉 renewed commitment will ensure the team is able to fly the massive balloon approximately 24 miles above Antarctica in late 2022.

Cosmic rays

Cosmic radiation reaching Earth is composed of different types of particles. The most common ones are protons and the nuclei of helium atoms. Antiparticles, however, are much less common. Antiparticles are in every aspect the same as their corresponding particle counterpart, but have the opposite charge. For instance, a proton has a positive charge, and its antiproton has a negative charge of the same value.

“The search for antiparticles promises to provide a messenger to understand rare processes in our Galaxy that we cannot see with the particle counterpart,” Doetinchem said. “The GAPS project’蝉 key goal is to use antiprotons and antideuterons (the corresponding antinucleus to the nucleus of heavy water, which is called deuterium) to search for dark matter. So far, we have lots of gravitational evidence for the existence of dark matter, but we do not know dark matter’s nature. This is one of the biggest questions in modern physics.”

东精影业’蝉 key role

The 东精影业 惭ā苍辞补 team is responsible for calibrating the balloon’蝉 sensor detectors, will contribute to the payload and integration efforts during flight operations, and will lead the data analysis after the mission in Antarctica. The calibration procedure was developed with collaborators at MIT, and dedicated state-of-the-art facilities have been set up at 东精影业 惭ā苍辞补. This calibration work is being carried out by postdoctoral researcher Achim Stoessl, graduate student Cory Gerrity and undergraduate student Hershel Weiner, through funding by 东精影业 惭ā苍辞补’蝉 (UROP).

Doetinchem said the calibration work will conclude by the end of 2021, and the integration and test phase of the balloon instrument will begin at MIT, UC Berkeley and NASA facilities. After the experiment is completed, Doetinchem’蝉 team will analyze the data. For this purpose, dedicated computing facilities will be purchased with the new NASA funding and operated at 东精影业 惭ā苍辞补.

Undergraduate student Layne Fujioka, under the guidance of Doetinchem and with funding from UROP, developed an that illustrates how the GAPS experiment works. The app is available on Android and development for the iPhone will begin in fall 2021.

The GAPS project will utilize the same NASA balloon facilities as Professor Peter Gorham’蝉 Antarctic Impulsive Transient Antenna project, which discovered new evidence that suggests some Antarctic particles do not fit the standard model of physics.

This work is an example of 东精影业 惭ā苍辞补’蝉 goal of (PDF), one of four goals identified in the (PDF), updated in December 2020.

—By Marc Arakaki

Back To Top