Periodic Reporting for period 1 - QUENCH (QUANTUM-ENHANCED BENCHTOP NMR SPECTROMETER)
Período documentado: 2024-01-01 hasta 2025-06-30
By merging quantum sensing with mainstream NMR technology, the project will deliver the first generation of compact, high-sensitivity benchtop spectrometers. The impacts are expected to be wide-ranging: Scientific: Fundamental advances in diamond growth, quantum control, and high-frequency device physics will accelerate progress across quantum technologies and spin-based sensing.Technological: Demonstration of μL-scale, high-field NV-NMR will provide a platform for next-generation benchtop spectrometers with record-breaking sensitivity. Societal & industrial: The technology opens access to powerful molecular analysis in contexts where conventional NMR is impractical, enabling transformative applications in quality control, environmental monitoring, drug discovery, medical diagnostics, chemical process monitoring, and materials innovation. The project’s results thus directly address the long-standing sensitivity bottleneck of NMR and pave the way for broad adoption of quantum-enhanced molecular spectroscopy.
On the control side, new quantum protocols were developed to couple NV ensembles to nuclear spins and suppress decoherence, extending effective coherence times by an order of magnitude and significantly enhancing sensitivity. Simulations calibrated to experiments confirmed the robustness of these sequences, and combined microwave–RF driving strategies further reduced noise from spin impurities. Integration efforts resulted in the assembly of a custom NV-spectrometer where high-frequency ODMR, fast π-pulses, and quantum sensing were shown at 1 Tesla.
The main scientific and technical outcomes are optimized diamond materials with improved coherence and alignment, validated high-frequency resonators for scalable sensing, novel control protocols that increase robustness and sensitivity. Together, these achievements establish the technical foundation for quantum-enhanced benchtop NMR with sensitivity well beyond that of conventional approaches.