Purcell-enhanced lifetime modulation of quantum emitters as a probe of local refractive index changes
arXiv:2504.14342 · doi:10.1103/xj8f-nvt3
Abstract
Quantum emitters embedded in photonic integrated circuit (PIC) cavities offer a scalable platform for label-free refractive index sensing at the nanoscale. We propose and theoretically analyze a sensing mechanism based on Purcell-enhanced modulation of the emitter's spontaneous emission lifetime, enabling detection of refractive index changes via time-correlated single-photon counting (TCSPC). Unlike traditional resonance-shift sensors, our approach uses lifetime sensitivity to variations in the local density of optical states (LDOS), providing an intensity-independent, spectrally unresolvable, CMOS-compatible modality. We derive analytical expressions linking refractive index perturbations to relative lifetime shifts and identify an optimal off-resonance regime with linear, high sensitivity to small perturbations. Using silicon PICs as an example, we show detection limits down to 10^{-9} RIU for Q = 10^5-10^7 cavities, matching or exceeding plasmonic and microresonator sensors with simpler instrumentation. Long-lived emitters such as T-centers in silicon allow sub-nanosecond shifts to be resolved with standard TCSPC systems. Although room-temperature operation of silicon-based quantum emitters remains unproven, the concept is generic and applicable to other PIC platforms, including diamond-, silicon nitride-, and silicon carbide-based systems where such operation is established.
13 pages, 22 equations, 7 figures, 3 tables, 30 references, 1 annex
References in corpus (9)
- Room temperature quantum bit storage exceeding 39 minutes using ionized donors in 28-silicon
- Low temperature investigations of single silicon vacancy colour centres in diamond
- A silicon-integrated telecom photon-spin interface
- Quantum computers based on electron spins controlled by ultra-fast, off-resonant, single optical pulses
- Room temperature single-photon emitters in silicon nitride
- Purcell enhancement of single-photon emitters in silicon
- Silicon nitride waveguides with intrinsic single-photon emitters for integrated quantum photonics
- Cavity enhanced emission from a silicon T center
- Purcell-Enhanced Single-Photon Emission in the Telecom C-Band