Carbon defects in TMD bilayers are computationally shown to enable room-temperature defect-mediated quantum emission at telecom wavelengths with material-dependent optical fingerprints.
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4 Pith papers cite this work. Polarity classification is still indexing.
years
2026 4verdicts
UNVERDICTED 4representative citing papers
A new dip-peak fitting model approximates ensemble cw-ODMR spectra near resonance as a Lorentzian plus background term, enabling more accurate resonance frequency extraction for NV temperature sensing.
A compact external cavity diode laser with NV-diamond achieves five-fold ODMR contrast enhancement near threshold and 7.6 nT/sqrt(Hz) sensitivity above threshold for singlet infrared absorption magnetometry.
Sequential temporal modulation in a three-mode system creates magnet-free nonreciprocity by giving forward and reverse frequency-conversion paths unequal dwell times in a lossy intermediate mode.
citing papers explorer
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Quantum Emitters at Telecommunication Wavelengths based on Carbon Defects in Transition Metal Dichalcogenides
Carbon defects in TMD bilayers are computationally shown to enable room-temperature defect-mediated quantum emission at telecom wavelengths with material-dependent optical fingerprints.
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Enhanced Temperature Sensitivity in Ensemble NV Centers through Improved Optically Detected Magnetic Resonance Spectral Modeling
A new dip-peak fitting model approximates ensemble cw-ODMR spectra near resonance as a Lorentzian plus background term, enabling more accurate resonance frequency extraction for NV temperature sensing.
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A robust laser cavity platform for NV-diamond singlet infrared absorption magnetometry
A compact external cavity diode laser with NV-diamond achieves five-fold ODMR contrast enhancement near threshold and 7.6 nT/sqrt(Hz) sensitivity above threshold for singlet infrared absorption magnetometry.
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Magnet-Free Nonreciprocal frequency conversion using Sequential Temporal modulation: Theory and Simulations
Sequential temporal modulation in a three-mode system creates magnet-free nonreciprocity by giving forward and reverse frequency-conversion paths unequal dwell times in a lossy intermediate mode.