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Quantum science and technology
Start here explains the quantum concepts, the qubit, superposition, entanglement and decoherence. The theme then follows the national mission and its hubs, quantum computers, quantum communication and cryptography, and quantum sensing. Prelims has asked about qubits and about the targets and hubs of the National Quantum Mission.
UPSC has asked
- Prelims 2025: the Majorana 1 chip and quantum computing
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What this theme is examined on, whatever the news.
Quantum concepts: qubit, superposition, entanglement, decoherence
Copy link to Quantum concepts: qubit, superposition, entanglement, decoherencePrelims and MainsAdded 20 September
A classical bit is 0 or 1; a qubit, a quantum bit, is a system such as an electron's spin or a superconducting circuit that can be in a superposition, a combination of 0 and 1 at once, until it is measured, when it gives one answer. Two qubits can be entangled, so that measuring one fixes the other however far apart they are, which Einstein called spooky and experiment has confirmed. A quantum computer uses both to work on many possibilities together, which for factoring, searching and simulating molecules promises speed no classical machine can match. The obstacle is decoherence: any disturbance from the environment collapses the superposition, so qubits must be isolated, often near absolute zero, and errors corrected by using many physical qubits for one reliable one. Quantum communication uses the same fragility as a strength: an eavesdropper on a quantum key disturbs it and is detected.
Two answers to the quantum threat to encryption
| Quantum key distribution | Post quantum cryptography | |
|---|---|---|
| What it is | a physical way to share a secret key using photons | new mathematical algorithms run on ordinary computers |
| What protects it | the laws of physics: measuring the key disturbs it | hardness of problems no known quantum algorithm solves |
| Needs | dedicated fibre or line of sight, or a satellite; special hardware | a software update |
| Range | tens to a few hundred km per link; satellites for more | unlimited |
| Ready today | demonstrations and pilot networks | standards published 2024, deployment under way |
| India | National Quantum Mission's 2,000 km network target, DRDO and ISRO demonstrations | adoption by banks and government systems is the next step |
- Hardware routes: superconducting circuits (IBM, Google), trapped ions, photons and semiconductor spins; each trades speed, error rate and ease of scaling. "Quantum advantage" is a task done faster than any classical computer, first claimed by Google in 2019.
- Quantum key distribution sends a key as photons; the BB84 protocol detects interception because measuring a photon changes it. India has demonstrated QKD over 100 km of fibre (DRDO, 2022) and in free space (ISRO, 2021), and the National Quantum Mission targets satellite QKD and a 2,000 km fibre network.
- Post quantum cryptography is the other defence: ordinary mathematics chosen because no known quantum algorithm breaks it; the United States standardised the first three algorithms in August 2024, and the threat it answers is "harvest now, decrypt later".
- Quantum sensing uses the same sensitivity to disturbance to measure time, gravity and magnetic fields more finely than any classical sensor, for navigation without satellites and for medical imaging.
- The National Quantum Mission, approved in April 2023 with Rs 6,003.65 crore to 2031, aims at intermediate scale computers of 50 to 1,000 qubits, QKD over 2,000 km, and four thematic hubs, for computing at IISc Bengaluru, communication at IIT Madras, sensing at IIT Bombay and materials at IIT Delhi.
Mains: Quantum technology is three different bets, computing, communication and sensing, on the same physics; India's mission funds all three, but the near term payoff is in communication and sensing, where the physics is proven and the engineering is the barrier.
UPSC has asked
- Prelims 2022: the context in which the term qubit is used
See also: National Quantum Mission · Entanglement sudden death · C-DOT quantum security products · Prompt injection and ASCII smuggling
National Quantum Mission
Copy link to National Quantum MissionPrelims and Mains
- Quantum Random Number Generator
- A device that draws truly random numbers from a quantum process, rather than computing predictable ones from an algorithm.
The National Quantum Mission is the money and the structure behind much of what India now does in quantum technology. It was approved in 2023, is run by the Department of Science and Technology, and works through four thematic hubs, each led by an institute.
- It aims at intermediate scale quantum computers of 50 to 1,000 physical qubits over eight years.
- A progress report in August 2026 said 17 quantum startups are being supported and another 23 quantum teaching labs are being set up.
- The All India Council for Technical Education (AICTE) has added undergraduate minor and Master of Technology (M.Tech) programmes.
- The Defence Research and Development Organisation (DRDO) has transferred a Quantum Random Number Generator and a quantum processor controller to industry.
- The Ministry of Electronics and Information Technology runs Qniverse, a quantum computing platform.
Quantum computing
- Indian Institute of Science (IISc), Bengaluru
- With the Centre for Development of Advanced Computing (C-DAC)
Quantum communication
- Indian Institute of Technology (IIT) Madras
- With the Centre for Development of Telematics (C-DOT)
Quantum sensing and metrology
- IIT Bombay
Quantum materials and devices
- IIT Delhi
What changed
12 Aug 2026
PIB, 12 Aug 2026: National Quantum Mission: hubs and progress (opens in a new tab)
30 Jul 2026Update
- The Mission now spans 86 institutions across four hubs: computing, communication, sensing and metrology, and materials and devices. The outlay is ₹6,003.65 crore to 2030 to 31, and 17 startups have been supported.
PIB, 30 Jul 2026: PARLIAMENT QUESTION: NATIONAL QUANTUM MISSION (opens in a new tab)
UPSC has asked
- Prelims 2026: the mission's qubit target and its four thematic hubs
Entanglement sudden death
Copy link to Entanglement sudden deathPrelims and Mains
- quantum entanglement
- A link between particles such that the state of one cannot be described without the other, however far apart they are.
Quantum entanglement weakens through decoherence as the particles decay towards their ground state. Entanglement sudden death is its complete loss at a finite time, before that decay has finished.
- The Raman Research Institute, Bengaluru, showed with mission funding that one well timed flip can prevent, delay or hasten entanglement sudden death.
- Photons carried the states, vertical polarisation standing for the excited state and horizontal for the ground state.
- The flip swaps the populations of the two states partway through, so timing itself becomes a control resource that needs no new hardware.
What changed
C-DOT quantum security products
Copy link to C-DOT quantum security productsPrelims and Mains
- Post-Quantum Cryptography
- Ordinary mathematical encryption, built to resist attack by future quantum computers.
A quantum computer able to break today's encryption does not exist yet, but traffic recorded today can be kept and read once one does. India's answer has a physical half and a mathematical half, and C-DOT builds both.
- C-DOT unveiled 14 indigenous quantum security products.
- They include fibre based Quantum Key Distribution (QKD) systems, a measurement device independent QKD system and an indigenous single photon detector.
- Its quantum safe encryptors work at up to 200 Gbps on Post-Quantum Cryptography algorithms standardised by the National Institute of Standards and Technology (NIST).
What changed
Quantum advantage claim from India
Copy link to Quantum advantage claim from IndiaPrelims and Mains
Quantum advantage is a result a quantum computer reaches faster than any known classical method, and the Quantum Advantage Tracker marks a claim superseded if a classical method later matches it; quantum computers are poor at arithmetic and good at simulating quantum systems, which is why such claims appear first in physics.
What changed
12 Jul 2026New subject
- A team at BITS Pilani, with IBM, simulated the behaviour of quarks and gluons under the strong nuclear force on 120 qubits in 20 seconds, against about two hours classically.
- It is the first active claim from an Indian laboratory on the Quantum Advantage Tracker, where a result is marked superseded if a classical method later matches it.
- Quantum computers are poor at arithmetic and good at simulating quantum systems, which is why useful advantage is appearing first in physics.
The Hindu, 12 Jul 2026: Indian lab designs quantum algorithm to beat computers (opens in a new tab) · PIB, 29 Jul 2026: PARLIAMENT QUESTION: DEVELOPMENT OF QUANTUM ALGORITHMS BY INDIAN RESEARCH INSTITUTIONS (opens in a new tab)