PT Journal AU Korneev, A Matvienko, V Minaeva, O Milostnaya, I Rubtsova, I Chulkova, G Smirnov, K Voronov, V Gol’tsman, G Slysz, W Pearlman, A Verevkin, A Sobolewski, R TI Quantum efficiency and noise equivalent power of nanostructured, NbN, single-photon detectors in the wavelength range from visible to infrared SO IEEE Trans. Appl. Supercond. JI IEEE Trans. Appl. Supercond. PY 2005 BP 571 EP 574 VL 15 IS 2 DI 10.1109/TASC.2005.849923 DE NbN SSPD; SNSPD; QE; NEP AB We present our studies on the quantum efficiency (QE) and the noise equivalent power (NEP) of the latest-generation, nanostructured, superconducting, single-photon detectors (SSPDs) in the wavelength range from 0.5 to 5.6 /spl mu/m, operated at temperatures in the 2.0- to 4.2-K range. Our detectors are designed as 4-nm-thick and 100-nm-wide NbN meander-shaped stripes, patterned by electron-beam lithography and cover a 10/spl times/10-/spl mu/m/sup 2/ active area. The best-achieved QE at 2.0 K for 1.55-/spl mu/m photons is 17%, and QE for 1.3-/spl mu/m infrared photons reaches its saturation value of /spl sim/30%. The SSPD NEP at 2.0 K is as low as 5/spl times/10/sup -21/ W/Hz/sup -1/2/. Our nanostructured SSPDs, operated at 2.0 K, significantly outperform their semiconducting counterparts, and, together with their GHz counting rate and picosecond timing jitter, they are devices-of-choice for practical quantum key distribution systems and free-space (even interplanetary) quantum optical communications. ER