**Executive Summary**
Scientists from the Aryabhatta Research Institute of Observational Sciences (ARIES) and Assam University have successfully mapped the magnetic field "skeleton" of molecular clouds L1604 and L121. The study, posted on March 20, 2026, explains how magnetic fields act as a "silent player" in star formation by resisting gravitational collapse. These findings reveal that magnetism regulates the pace of star birth, preventing the galaxy's gas from being consumed all at once.
**Key Points / Main Content**
* **Research Methodology**
* The team used R-band polarimetry with the ARIES Imaging Polarimeter (AIMPOL) on a 104-cm telescope at Nainital.
* They measured the polarization of starlight as it passed through dust grains aligned by magnetic fields.
* By mapping thousands of these light waves, researchers visualized the invisible magnetic structures surrounding the clouds.
* **Cloud Characteristics**
* **L1604:** Located 816 parsecs away toward the Galactic anticenter; it is highly dense and massive, containing enough material to form many new stars.
* **L121:** Located 124 parsecs away toward the Galactic center; it is less dense and massive but possesses a stronger, more orderly magnetic field.
* **The Role of Magnetism in Star Formation**
* Both clouds are "sub-critical," meaning their magnetic fields are strong enough to resist gravitational collapse across their full bodies.
* At the envelope scale, magnetic energy exceeds both turbulent kinetic energy and gravitational energy.
* Magnetism serves as the "invisible hand" that slows star formation across the galaxy.
* **Cradles of Star Birth**
* While magnetic fields protect the outer envelopes of the clouds, gravity dominates within the dense internal cores.
* These cores represent the specific locations where future stars are born, even as the surrounding environment remains magnetically supported.
**Impact Analysis**
**Astronomers and the Scientific Community**
**Impact**
This research provides a detailed "recipe" for star formation and identifies L1604 and L121 as "active laboratories." It offers a clearer understanding of the tug-of-war between gravity, internal pressure, and magnetism.
**Action Required**
Researchers can access the study via the provided publication link to utilize the polarization maps and findings for further astrophysical modeling and million-year-long observations of cosmic forces.
**Ministry of Science & Technology / ARIES**
**Impact**
The successful use of the AIMPOL instrument and the 104-cm ARIES telescope validates the technical capabilities of these indigenous observational tools in capturing complex magnetic morphologies.
**Action Required**
The institutions should continue to support autonomous research initiatives that utilize polarimetry to map other regions of the Milky Way disc.
Key Entities Referenced
Aryabhatta Research Institute of Observational Sciences (ARIES): An autonomous research institute under the Department of Science and Technology that led the study in mapping the magnetic fields of molecular clouds.
Department of Science and Technology (DST): The nodal government department that oversees ARIES and provides the administrative framework for the research initiative.
Assam University: A collaborating academic institution whose research team worked with ARIES to investigate star formation processes.
ARIES Imaging Polarimeter (AIMPOL): The specific scientific instrument used on the 104-cm ARIES telescope to perform R-band polarimetry and visualize magnetic field structures.
Ministry of Science & Technology
Scientists find ways of understanding role of
molecular clouds near Milky Way disc in star
formation
Posted On: 20 MAR 2026 5:00PM by PIB Delhi
Scientists tracing small molecular clouds located near the Milky Way disc have "seen" the skeleton of the
magnetic field surrounding them for the first time to better understand its role in star formation.
For decades, astronomers have known that gravity pulls molecular clouds inward to form stars, while
internal pressure pushes them outward. But there is a third, silent player in this tug-of-war: the Magnetic
Field.
L1604 and L121 are small molecular clouds, modest stellar nurseries with L1604 lying toward the
Galactic anticenter and L121 toward the crowded Galactic center.
As magnetic fields are invisible, the research team from Aryabhatta Research Institute of Observational
Sciences (ARIES) an autonomous institute of Department of Science and Technology (DST) and Assam
University used R-band polarimetry with the ARIES Imaging Polarimeter (AIMPOL) on the 104-cm
ARIES telescope at Nainital to measure how starlight from distant stars becomes polarized as it passes
through dust in the molecular clouds. When starlight hits dust grains aligned by a magnetic field, the light
vibrates in a specific direction. By mapping thousands of these light waves, the team "saw" the skeleton of
the magnetic fields surrounding L1604 and L121 for the first time.
The researchers found two very different personalities. The two clouds also lie at very different distances-
L1604 at around 816 parsecs and L121 nearly seven times closer at just 124 parsecs. The L1604 cloud is
highly dense and more massive and has enough material to possibly form many new stars. L121 is located
toward the center of the Galaxy. It is less dense and less massive than L1604, but has a stronger magnetic
field. Moreover, its magnetic field morphology appears more orderly, suggesting it hasn't yet been warped
by the violent gravitational collapse that characterizes more active star-forming regions.Fig: Polarization maps of dark clouds L1604 and L121. Solid lines represent the polarization vector
corresponding background stars overlaid on the composite DSS images of the respective clouds. The
orientation of the Galactic Plane (GP) is marked with a dashed line. The cross denotes the central position
of each cloud. Contours of the Herschel SPIRE 500 μm dust continuum emission are over plotted.
By calculating the magnetic field strength the scientists found that both clouds are firmly sub-critical,
meaning the magnetic fields are comfortably strong enough to resist gravitational collapse across the full
body of both clouds. The magnetic fields are not "just barely" holding on -they dominate over both gravity
and turbulence, with magnetic energy exceeding turbulent kinetic energy, which in turn exceeds
gravitational energy at the envelope scale. However, in the dense cores nestled deep within these clouds,
gravity may be quietly gaining the upper hand, making these cores the true cradles of future star birth even
as the surrounding envelope remains magnetically protected.
This story isn't just about two clouds; it’s about the "recipe" for a star. By showing exactly how magnetic
fields wrap around and permeate these small clouds, the study reveals that magnetism is the invisible hand
that slows star formation, preventing the galaxy from turning all its gas into stars at once.
L1604 and L121 are now more than just dark spots on a map; they are active laboratories where we can
watch the fundamental forces of the universe, gravity and magnetism, dance in a delicate, million-year-
long embrace.
Publication link: https://academic.oup.com/mnras/article/545/4/staf2228/8382486?login=true
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