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The Quantum Materials and Devices Thematic Hub serves as a dedicated platform aimed at the exploration, advancement, and commercialization of materials and devices that utilize quantum mechanical phenomena, including superposition, entanglement, and tunneling.

Quantum materials play a vital role in the evolution of various quantum technologies, encompassing quantum computing, quantum communication, and quantum sensing. Notable examples of these materials include topological insulators, superconductors, and quantum dots, which possess distinctive characteristics essential for the operation of quantum devices.

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Thematic Hub
IIT Delhi

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Objective

This vertical focuses on the discovery and fabrication of novel quantum materials and devices to enable advancements in quantum computing, communication, and sensing. The specific objectives include:

Developing Novel Quantum Materials

Explore and engineer new materials like topological insulators, superconductors, and 2D materials for next-generation quantum devices.

Fabricating High-Performance Qubits

Design and optimize qubit structures using quantum dots, nanowires, and spintronic materials to enhance qubit coherence and scalability.

Enhancing Single-Photon Sources & Detectors

Improve efficiency and reliability of single-photon sources and entangled photon generators for quantum communication and sensing.

Advancing Nanotechnology for Quantum Application

Utilize nanowires, nanotubes, and hybrid materials for miniaturized quantum devices with enhanced performance.

Optimizing Device Integration

Facilitate the integration of quantum materials with existing semiconductor technologies to bridge the gap between classical and quantum systems.

Technical Groups

Quantum Materials and Devices harnesses quantum mechanics to perform computations far beyond the reach of classical computers.

Reconfigurable and Scalable Photonic Qubit Architecture for Quantum Computing Heterogeneous and Monolithic Approaches RASPAC

Development of On-Demand Single Photon Emitters, Single Photon Avalanche Detectors, High-Frequency Devices and Nanowire Quantum Devices Utilizing GaAs and InP-Based Epitaxial Semiconductors

Wafer-scale Emitter and Detector Arrays for Multi-wavelength Room Temperature Photonic Quantum Technologies

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