Current dependence of the hot-spot response spectrum of superconducting single-photon detectors with different layouts
arXiv:1608.06083 · doi:10.1088/1361-6668/30/2/025016
Abstract
We show that avoiding bends in a current-carrying superconducting nanowire enhances the probability for low energy photons to be detected and that this enhancement is entirely due to the increase in the experimentally achievable critical current. We studied nanowires shaped as either meander or spiral. The spirals had different layouts, a double-spiral layout with an S-turn in the middle and a single-spiral layout without such turn. Nanowires were prepared from films of niobium nitride with a thickness of 5 nm. For specimens with each layout we measured the spectra of the single-photon response in the wavelength range from 400 nm to 1600 nm and defined the cut-off wavelength beyond which the response rolls off. The largest and the smallest were found for the single-spiral layout and for the meander, respectively. For all three layouts the relationship between and the relative bias current falls onto a universal curve which has been predicted earlier in the framework of the modified hot-spot model. For the single-spiral layout, the efficiency of photon detection at wavelengths smaller than reaches the expected absorbance of the spiral structure and the timing jitter per unit length of the nanowire has the smallest value.
References in corpus (5)
- Superconducting nanowire single-photon detectors: physics and applications
- Vortex-induced dissipation in narrow current-biased thin-film superconducting strips
- Superconducting nanowire detector jitters limited by detector geometry
- Critical-Current Reduction in Thin Superconducting Wires Due to Current Crowding
- Current dependence of the 'red' boundary of superconducting single photon detectors in the modified hot spot model
Cited by in corpus (7)
- Superconducting microstrip single-photon detector with system detection efficiency over 90% at 1550 nm
- Physical mechanisms of timing jitter in photon detection by current carrying superconducting nanowires
- Enhancing the Performance of Superconducting Nanowire-Based Detectors with High-Filling Factor by Using Variable Thickness
- Enhancement of superconductivity in NbN nanowires by negative electron-beam lithography with positive resist
- Sputtered NbN Films for Ultrahigh Performance Superconducting Nanowire Single-Photon Detectors
- Millimeter-scale active area superconducting microstrip single-photon detector fabricated by ultraviolet photolithography
- Current-Crowding-Free Superconducting Nanowire Single-Photon Detectors