**Executive Summary**
The Indian Institute of Astrophysics (IIA) utilized NASA's James Webb Space Telescope (JWST) data to study polycyclic aromatic hydrocarbons (PAHs) in the circumstellar disk of the young star T Chamaeleontis (T Cha). The JWST captured the moment of partial collapse of the disk's inner wall in 2022, allowing ultraviolet light to illuminate the outer disk, revealing complex hydrocarbon molecules. This discovery is published in the Astronomical Journal.
**Key Points / Main Content**
* **Discovery and Observation:**
* Astronomers observed the partial collapse of the inner wall of T Cha's circumstellar disk.
* The collapse allowed ultraviolet light to reach the outer disk, illuminating PAHs.
* JWST data from 2022 revealed clearer detection of PAHs than previous observations.
* PAH signals were much stronger in 2022 while relative intensities of features have remained stable.
* **Significance of T Cha:**
* T Cha has a gap in its circumstellar disk, likely due to a forming protoplanet.
* The system is key for studying young planet-disk interaction.
* T Cha is now one of the lowest mass stars with PAH detection in its circumstellar disk.
* **PAH Characteristics:**
* The PAHs in T Cha are smaller molecules, containing less than 30 carbon atoms.
* JWST data confirms the presence of PAH molecules in Spitzer's spectrum of T Cha.
* PAH molecules grew brighter but their properties remained unchanged.
* **JWST's Role:**
* JWST's MIRI revealed broad emission bands in the mid-infrared from 5 - 15 microns.
* JWST helped shed light on the survival and variation of hydrocarbon molecules.
* JWST can revisit T Cha multiple times to measure PAH evolution with the disk.
**Impact Analysis**
**Astronomers/Researchers**
* **Impact:** The study provides new insights into planetary system evolution and the role of disk collapse. It gives researchers access to a confirmed PAH detection in Spitzer's spectrum of T Cha.
* **Action Required:** Review the publication link (10.3847/1538-3881/adf637) for detailed analysis and potential future research directions.
**Indian Institute of Astrophysics (IIA)**
* **Impact:** Showcases the IIA's contribution to astronomical research using advanced telescope data.
* **Action Required:** Continue analyzing JWST data for further discoveries related to stellar disks and planet formation.
**Department of Science and Technology (DST)**
* **Impact:** Highlights the DST's support of scientific institutions like the IIA, which facilitates significant research.
* **Action Required:** Continue funding and supporting research initiatives that utilize advanced astronomical instruments.
Key Entities Referenced
James Webb Space Telescope (JWST): NASA's telescope used to observe T Cha's spectrum and polycyclic aromatic hydrocarbons (PAHs).
Indian Institute of Astrophysics (IIA): Autonomous institute of the Department of Science and Technology (DST), that conducted the study.
Department of Science and Technology (DST): The government department under which IIA operates.
T Chamaeleontis (T Cha): Young star and circumstellar disk being studied for hydrocarbon molecules and planetary formation.
Polycyclic Aromatic Hydrocarbons (PAHs): Molecules studied in relation to T Cha's circumstellar disk and the inner wall collapse.
Ministry of Science & Technology
When the inner wall fell: complex hydrocarbon
molecules in a young stellar disk
प्रव तथ: 26 DEC 2025 6:31PM by PIB Delhi
Astronomers have unveiled an intriguing secret behind the dusty veil of a young star named T
Chamaeleontis, quietly forming planets about 350 light-years from Earth when part of its circumstellar
inner wall collapsed partially. This can help rewrite our understanding of how planetary systems evolve.
T Chamaeleontisan (T. Cha) is an extraordinary star is no ordinary young star. It is surrounded by a planet-
forming disk called circumstellar disk that contains a wide gap—likely carved out by a newborn planet.
Normally, the dense inner regions of such disks act like a protective wall or veil blocking much of the
star’s ultraviolet light from reaching the colder, outer regions. That shielding makes Poly Atomic
Hrydrocarbons (PAHs), flat, honeycomb-shaped molecules (Benzene rings) made of carbon and hydrogen
thought to be among the earliest precursors of life’s chemistry, especially hard to detect around low-mass,
Sun-like stars.
While these molecules are common in interstellar clouds, detecting them in the disks of low-mass, Sun-
like stars has been challenging due to the low amount of ultra violet light produced by them
Fig 1: Top panel: The MIR spectrum of T Cha observed by JWST (red) in 2022 along with that observed
by Spitzer (red) in 2002, showing that the slope of the spectrum had changed due to the collapse of the
inner wall of the stellar disk. Bottom panel: the continuum subtracted MIR data from JWST and Spitzer
showing the various spectral emission bands from PAH molecules. The PAH signals are much stronger in
2022 but the relative intensities of the features have stayed nearly the same, evidence that the molecules
themselves have remained stable over time.Scientists from the Indian Institute of Astrophysics (IIA), an autonomous institute of the Department of
Science and Technology (DST) used archival spectroscopic data from NASA’s James Webb Space
Telescope (JWST) Mid Infrared Instrument (MIRI) to study polycyclic aromatic hydrocarbons (PAHs) in
the spectrum of this star.
The ultra-sensitive JWST telescope, almost by accident, caught the moment in 2022 when that veil
thinned—and an ancient kind of chemistry lit up in space. The material from the disk of the star suddenly
plunged onto the star in a burst of accretion, thinning or partially collapsing that inner wall. As this
happened ultraviolet radiation suddenly streamed outward, illuminating parts of the disk that were once in
shadow. This helped shed light on the survival and variation of complex hydrocarbon molecules in the
planet-forming disk around a young, Sun-like star.
T Cha is known to host a gap in its circumstellar disk that surrounds the central star, and this disk is
believed to be caused by an emerging protoplanet.
This gap makes the system a key target for studying how young planets interact with their natal disks and
shape their surrounding environments during the early stages of planet formation.
They absorb ultraviolet photos from the central star, and produce broad emission bands in the mid-infrared
from 5 - 15 microns.
"JWST’s MIRI has now revealed them clearly in T Cha and this is one of the lowest mass stars with PAH
detection in their circumstellar disk”, said Arun Roy, a post-doctoral fellow at IIA.
What makes this finding published in the Astronomical Journal extraordinary is the role of a dramatic
change in the star’s circumstellar disk during its collapse due to high accretion event.
T Cha was observed by JWST in 2022, when inner wall had partially collapsed allowing ultraviolet
photons to flood the outer disk.
Fig 2: An artist’s illustration of the JWST mirrors along with the PAH molecular structure (credits: JWST)
“This sudden illumination excited the PAHs in the disk, making them glow strongly in JWST’s detectors.
It was like a curtain lifting, revealing chemistry that had been hidden for years,” says Arun Roy.
When Roy re-examined archival data from the Spitzer Space Telescope, he found faint but definite PAH
signatures even then, making this the first confirmed detection of such molecules in Spitzer’s spectrum of
T Cha. The comparison of the JWCT with archival data showed that while the PAHs grew brighter with
JWST, their intrinsic properties such as charge and size remained unchanged over the two decades as seen
by relative intensities of various PAH bands.
The study reports the PAH population in T Cha are smaller molecules with less than 30 carbon atoms in its
structure.“With JWST still in its prime, we can now revisit the disk of T Cha at multiple times, measuring how
PAHs evolve with disk in time” Roy pointed out.
Publication link: 10.3847/1538-3881/adf637
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