**Executive Summary**
The Raman Research Institute (RRI), under the Department of Science and Technology (DST), has developed a new technique called Raman Driven Spin Noise Spectroscopy (RDSNS) for real-time, non-invasive local density measurements of cold atoms. This method overcomes the limitations of existing techniques like absorption and fluorescence imaging and offers a more precise way to probe atomic density at the micron-scale. The research was supported by India’s National Quantum Mission and the research was published on 08 JAN 2024, with the link: https://doi.org/10.1063/5.0277027.
**Key Points / Main Content**
* **New Technique: Raman Driven Spin Noise Spectroscopy (RDSNS)**
* Enables real-time local density measurements of cold atoms without significantly disturbing them.
* Combines spin noise spectroscopy with two additional laser beams to coherently drive atoms between adjacent spin states.
* Provides a direct measure of local density rather than total atom number.
* Operates at low power, allowing microsecond-scale measurements.
* Performs robustly even in asymmetric or dynamically evolving atomic clouds.
* **Advantages over Existing Techniques:**
* Absorption imaging struggles with dense atomic clouds.
* Fluorescence imaging requires longer exposure times and can be destructive.
* RDSNS overcomes these limitations, providing fast, precise, and non-invasive measurements.
* **Applications:**
* Quantum computation and quantum sensing.
* Real-time diagnostics of cold atom experiments.
* Devices like gravimeters and magnetometers.
* Studying phenomena like density wave propagation and quantum transport.
* **Findings:**
* RDSNS can study potassium atoms in a magneto-optical trap (MOT).
* Central density of atomic cloud saturates within one second; total atom count takes twice as long.
* Fluorescence reveals global atom counts, while RDSNS shows how tightly atoms are packed locally.
* **Supporting statements**
* "The technique is non-invasive, as the probe is far-detuned and operates at low power, allowing even microsecond-scale measurements to achieve accuracy within a few percent" - Bernadette Varsha FJ & Bhagyashri Deepak Bidwai, Research Assistants, QuMIX lab at RRI
* "Real-time nondestructive imaging methods are a great quantum sensing and computing candidate. It uncovers many-body dynamics by capturing the transient microscopic density fluctuations. It can be used to benchmark theoretical models with spatially resolved data." - Sayari, a PhD researcher at RRI and the study's lead author.
* "We anticipate that this technique will find broad applications in real time diagnostics of cold atom experiments especially in context of quantum computing with neutral atoms and quantum simulations with cold atoms, and in domains such as exploring transport phenomena, non-equilibrium dynamics etc.” - Prof. Saptarishi Chaudhuri, who leads the Quantum Mixtures (QuMIX) lab at RRI
**Impact Analysis**
**Quantum Technology Researchers/Scientists:**
* **Impact:** RDSNS offers a valuable tool for developing quantum technologies by enabling fast, precise, and non-invasive density measurements. It opens new avenues for studying quantum phenomena at the micro-scale.
* **Action Required:** Explore the application of RDSNS in their respective research areas, especially in quantum computing, quantum sensing, and related fields.
**Raman Research Institute (RRI) / Department of Science and Technology (DST):**
* **Impact:** This breakthrough positions RRI at the forefront of precision measurement in quantum research and strengthens the DST’s role in supporting cutting-edge scientific advancements.
* **Action Required:** Continue to support and develop the RDSNS technology and explore collaborations with other institutions and industry partners to further its applications.
**National Quantum Mission:**
* **Impact:** The RDSNS development aligns with the mission's goals of advancing quantum technology in India and underscores the importance of investing in basic research.
* **Action Required:** Continue to support RRI and other institutions in quantum research and development initiatives, fostering innovation and collaboration.
**Users of Quantum Devices (e.g., gravimeters, magnetometers):**
* **Impact:** The ability to make fast, precise, and non-invasive density measurements has the potential to improve the performance and reliability of quantum devices.
* **Action Required:** Stay informed about the advancements in RDSNS technology and explore its potential applications in their respective fields.
Key Entities Referenced
Ministry of Science & Technology: Indian government ministry responsible for science and technology
Raman Research Institute (RRI): Autonomous institute under the Department of Science and Technology (DST) where the new technique was developed
Department of Science and Technology (DST): Department under the Ministry of Science & Technology, which RRI is part of
National Quantum Mission: India's mission which supported the precision measurement research at RRI.
Raman Driven Spin Noise Spectroscopy (RDSNS): Technique developed to enable local density measurements of cold atoms.
Ministry of Science & Technology
Non-invasive way to feel density of atoms can
provide a new window into the Quantum World
प्रव तथ: 08 JAN 2026 11:17AM by PIB Delhi
A new technique developed by scientists can enable local density measurements of cold atoms in real
time, without significantly disturbing them. This could prove instrumental in the development of near-
future applications in quantum computation and quantum sensing, where real-time detection of atoms and
their quantum state is of paramount importance.
In conventional cold atom experiments, where kinetic energy of atoms are reduced to near absolute zero
temperatures by means of laser cooling and trapping techniques, the quantum properties of the atoms are
more evident. These cold atoms can then be used as resources for quantum computers and quantum
sensing. In order to detect the quantum state of these atoms, methods such as absorption and fluorescence
imaging are widely used. However, these techniques have inherent limitations. Absorption imaging
struggles while imaging dense atomic clouds because the probe beam cannot penetrate sufficiently to
provide accurate density measurements. Fluorescence imaging, on the other hand, requires longer
exposure times to collect scattered photons, and both approaches are often destructive, altering the state of
the atoms during measurement.
Researchers at the Raman Research Institute, an autonomous institute of the Department of Science and
Technology (DST), Government of India, demonstrated a technique called Raman Driven Spin Noise
Spectroscopy (RDSNS), that overcomes these challenges by combining spin noise spectroscopy, which
detects natural fluctuations of atomic spins by detecting the polarisation fluctuations of a laser light
passing through the atomic sample. This method also uses two additional laser beams to coherently drive
atoms between two adjacent spin states.
Fig. RDSNS is a non-invasive measurement that enables us to probe the atom cloud in high temporal and
spatial resolutionThese Raman beams drive transitions between atomic states and dramatically boost the signal – by nearly
a million times. The probing volume is 0.01mm3 which is achieved by focusing the probe to just 38
micrometers, targeting a tiny region of the atom cloud encompassing about 10,000 atoms. Importantly, the
measured signal provides a direct measure of local density rather than merely the total atom number.
The team used RDSNS to study potassium atoms in a magneto-optical trap (MOT), and observed that the
central density of the atomic cloud saturated within one second, whereas the total atom count, measured
via fluorescence, took nearly twice as long.
This highlights a key difference-- fluorescence reveals global atom counts, while RDSNS shows how
tightly atoms are packed locally.
“The technique is non-invasive, as the probe is far-detuned and operates at low power, allowing even
microsecond-scale measurements to achieve accuracy within a few percent,” Bernadette Varsha FJ &
Bhagyashri Deepak Bidwai, Research Assistants, QuMIX lab at RRI pointed out.
“Real-time nondestructive imaging methods are a great quantum sensing and computing candidate. It
uncovers many-body dynamics by capturing the transient microscopic density fluctuations. It can be used
to benchmark theoretical models with spatially resolved data.”, said Sayari, a PhD researcher at RRI and
the study's lead author.
To validate RDSNS, the team compared local density profiles with results obtained using the inverse Abel
transform applied to fluorescence images. The agreement was remarkable. Unlike the Abel transform,
which requires axial symmetry, RDSNS performs robustly even in asymmetric or dynamically evolving
atomic clouds.
The broader significance of this work is invaluable for quantum technologies; fast, precise, and non-
invasive density measurements are helpful in devices like gravimeters, magnetometers, and other sensors
that depend critically on knowing atom density with precision. By enabling micron-scale local probing
without disturbing the system, RDSNS opens pathways to study phenomena such as density wave
propagation, quantum transport, to name a few.
“We anticipate that this technique will find broad applications in real time diagnostics of cold atom
experiments especially in context of quantum computing with neutral atoms and quantum simulations with
cold atoms, and in domains such as exploring transport phenomena, non-equilibrium dynamics etc.”, said
Prof. Saptarishi Chaudhuri, who leads the Quantum Mixtures (QuMIX) lab at RRI.
Supported under India’s National Quantum Mission, this breakthrough positions RRI at the forefront of
precision measurement in quantum research, underscoring a broader lesson: progress often comes not
from looking harder, but from finding gentler, smarter ways to look.
Publication Link: https://doi.org/10.1063/5.0277027
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