Superconductivity
Can one compact photon detector carry gigabit laser links from space?
Open access · cc by · source: Europe PMC
A four-output superconducting nanowire detector counted single photons fast and efficiently enough to receive laser data at over a gigabit per second using only a couple of photons per bit, while tolerating daylight-level noise.
Study at a glance
- Design
- Other — Lab device experiment: a 2×2 NbN nanowire detector array with six shunted sub-pixels per quadrant, characterised optically and used as the receiver in a free-space 1550 nm PPM communication testbed.
- N
- One detector device; no sample of units or participants.
- Population
- A single NbN superconducting nanowire single-photon detector array operated at cryogenic temperature
- Outcome
- Detection efficiency, timing jitter, counting rate, photon-number resolution, receiver sensitivity (photons per bit), tolerance to background noise, and beam-position sensing
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Key findings
Average detection efficiency was 91.6%, jitter was 78 ps for single photons and 21 ps for six-photon events, and the whole array counted about 1.6 billion photons per second while resolving up to 24 photons. The receiver needed 1.47 photons per bit at 480 Mbps and 7.41 photons per bit at 1.5 Gbps. Using photon-number information let the link tolerate roughly 0.8 background photons per slot at 120 Mbps versus about 0.1 for simple on/off detection, and the four quadrants could sense beam position.
Methodology
The authors built a superconducting nanowire detector split into four quadrants, each made of six nanowire sections in series with shunt resistors, so that many sub-pixels share one readout line. They measured its efficiency, timing jitter, counting rate and ability to count how many photons arrived. They then used it as the receiver in a lab laser-communication testbed with pulse-position modulation and error-correcting codes, varying bit rate, added background light and beam position.
Limitations
Everything was done in a laboratory with an attenuator simulating distance, not over a real space-to-ground link with atmospheric turbulence. Signal processing and decoding were done offline on recorded waveforms, so real-time operation is not demonstrated. With free-space coupling the system efficiency fell to 52.5%, and the small active area creates a trade-off with collecting light from a large telescope. Only a single device was tested.
How this study connects
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