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Updated: Jul 2, 2026

Fabrication, Densification, and Replica Molding of 3D Carbon Nanotube Microstructures
Published on: July 2, 2012
The carbon nanotube gatemon qubit.
H Riechert1, S Annabi1, A Peugeot1,2
1Laboratoire de Physique de la Matière Condensée, CNRS, Ecole Polytechnique, Institut Polytechnique de Paris, Palaiseau, France.
Researchers demonstrate coherent control of a gatemon qubit using a single carbon nanotube. This breakthrough achieves record coherence times, positioning carbon nanotubes as promising for quantum technologies and studying quantum conductors.
Area of Science:
- Quantum Computing
- Condensed Matter Physics
- Materials Science
Background:
- Gate-tunable transmon qubits (gatemons) are crucial for quantum computing.
- Current gatemons utilize extended conductors like semiconductors or graphene.
- Implementing gatemons with novel materials is essential for advancing quantum technologies.
Purpose of the Study:
- To demonstrate coherent control of a gatemon qubit using a single carbon nanotube.
- To investigate the performance and coherence of carbon nanotube-based qubits.
- To explore the potential of carbon nanotubes in quantum information processing.
Main Methods:
- Fabrication of a gatemon qubit integrated with a single carbon nanotube using circuit quantum electrodynamics architecture.
- Utilizing a hexagonal boron nitride substrate for ultraclean integration.
- Characterization of qubit spectrum tuning via gate voltage and investigation of decoherence mechanisms.
Main Results:
- Successful coherent control of a gatemon qubit based on a single carbon nanotube.
- Achieved record coherence times of 200 ns for carbon nanotube qubits.
- Identified gate dependence and charge noise as key decoherence factors.
Conclusions:
- Carbon nanotubes are viable candidates for future quantum technologies.
- The study provides a platform for investigating fermionic processes in low-dimensional quantum conductors.
- Ultraclean integration techniques are vital for high-performance molecular qubits.
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