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Featured researches published by A. Pearlman.


Applied Physics Letters | 2004

Sensitivity and gigahertz counting performance of NbN superconducting single-photon detectors

Alexander Korneev; P. Kouminov; V. Matvienko; G. Chulkova; K. Smirnov; B. Voronov; G. N. Gol’tsman; Marc Currie; William Lo; Kenneth R Wilsher; J. Zhang; W. Slysz; A. Pearlman; A. Verevkin; Roman Sobolewski

We have measured the quantum efficiency (QE), GHz counting rate, jitter, and noise-equivalent power (NEP) of nanostructured NbN superconducting single-photon detectors (SSPDs) in the visible to infrared radiation range. Our 3.5-nm-thick and 100- to 200-nm-wide meander-type devices (total area 10×10μm2), operating at 4.2K, exhibit an experimental QE of up to 20% in the visible range and ∼10% at 1.3 to 1.55μm wavelength and are potentially sensitive up to midinfrared (∼10μm) radiation. The SSPD counting rate was measured to be above 2GHz with jitter <18ps, independent of the wavelength. The devices’ NEP varies from ∼10−17W∕Hz1∕2 for 1.55μm photons to ∼10−20W∕Hz1∕2 for visible radiation. Lowering the SSPD operating temperature to 2.3K significantly enhanced its performance, by increasing the QE to ∼20% and lowering the NEP level to ∼3×10−22W∕Hz1∕2, both measured at 1.26μm wavelength.


IEEE Transactions on Applied Superconductivity | 2007

Middle-Infrared to Visible-Light Ultrafast Superconducting Single-Photon Detectors

Gregory N. Goltsman; O. Minaeva; A. Korneev; M. Tarkhov; I. Rubtsova; A. Divochiy; I. Milostnaya; G. Chulkova; N. Kaurova; B. Voronov; D. Pan; J. Kitaygorsky; A. Cross; A. Pearlman; I. Komissarov; W. Slysz; M. Wegrzecki; P. Grabiec; Roman Sobolewski

We present an overview of the state-of-the-art of NbN superconducting single-photon detectors (SSPDs). Our devices exhibit quantum efficiency (QE) of up to 30% in near-infrared wavelength and 0.4% at 5 mum, with a dark-count rate that can be as low as 10-4 s-1. The SSPD structures integrated with lambda/4 microcavities achieve a QE of 60% at telecommunication, 1550-nm wavelength. We have also developed a new generation of SSPDs that possess the QE of large-active-area devices, but, simultaneously, are characterized by low kinetic inductance that allows achieving short response times and the GHz-counting rate with picosecond timing jitter. The improvements presented in the SSPD development, such as fiber-coupled SSPDs, make our detectors most attractive for high-speed quantum communications and quantum computing.


Journal of Modern Optics | 2004

Ultrafast superconducting single-photon detectors for near-infrared-wavelength quantum communications

A. Verevkin; A. Pearlman; W. Slysz; J. Zhang; Marc Currie; A. Korneev; G. Chulkova; O. Okunev; P. Kouminov; K. Smirnov; B. Voronov; Gregory N. Goltsman; Roman Sobolewski

Abstract The paper reports progress on the design and development of niobium-nitride, superconducting single-photon detectors (SSPDs) for ultrafast counting of near-infrared photons for secure quantum communications. The SSPDs operate in the quantum detection mode, based on photon-induced hotspot formation and subsequent appearance of a transient resistive barrier across an ultrathin and submicron-width superconducting stripe. The devices are fabricated from 3.5 nm thick NbN films and kept at cryogenic (liquid helium) temperatures inside a cryostat. The detector experimental quantum efficiency in the photon-counting mode reaches above 20% in the visible radiation range and up to 10% at the 1.3–1.55 μn infrared range. The dark counts are below 0.01 per second. The measured real-time counting rate is above 2 GHz and is limited by readout electronics (the intrinsic response time is below 30 ps). The SSPD jitter is below 18 ps, and the best-measured value of the noise-equivalent power (NEP) is 2 × 10−18 W/Hz1/2. at 1.3 μm. In terms of photon-counting efficiency and speed, these NbN SSPDs significantly outperform semiconductor avalanche photodiodes and photomultipliers.


IEEE Transactions on Applied Superconductivity | 2005

Fabrication development for nanowire GHz-counting-rate single-photon detectors

Joel K. W. Yang; Eric A. Dauler; Antonin Ferri; A. Pearlman; Aleksandr Verevkin; Gregory N. Goltsman; B. Voronov; Roman Sobolewski; William E. Keicher; Karl K. Berggren

We have developed a fabrication process for GHz-counting-rate, single-photon, high-detection-efficiency, NbN, nanowire detectors. We have demonstrated two processes for the device patterning, one based on the standard polymethylmethacrylate (PMMA) organic positive-tone electron-beam resist, and the other based on the newer hydrogen silsesquioxane (HSQ) negative-tone spin-on-glass resist. The HSQ-based process is simple and robust, providing high resolution and the prospect of high fill-factors. Initial testing results show superconductivity in the films, and suggest that the devices exhibit photosensitivity.


IEEE Transactions on Applied Superconductivity | 2005

Quantum efficiency and noise equivalent power of nanostructured, NbN, single-photon detectors in the wavelength range from visible to infrared

A. Korneev; V. Matvienko; O. Minaeva; I. Milostnaya; I. Rubtsova; G. Chulkova; K. Smirnov; V. Voronov; Gregory N. Goltsman; W. Slysz; A. Pearlman; A. Verevkin; Roman Sobolewski

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.


Applied Physics Letters | 2006

Fiber-coupled single-photon detectors based on NbN superconducting nanostructures for practical quantum cryptography and photon-correlation studies

W. Slysz; M. Wegrzecki; J. Bar; P. Grabiec; M. Górska; V. Zwiller; C. Latta; P. Bohi; I. Milostnaya; O. Minaeva; A. Antipov; O. Okunev; A. Korneev; K. Smirnov; B. Voronov; N. Kaurova; G. N. Gol’tsman; A. Pearlman; A. Cross; I. Komissarov; A. Verevkin; Roman Sobolewski

We have fabricated and tested a two-channel single-photon detector system based on two fiber-coupled superconducting single-photon detectors (SSPDs). Our best device reached the system quantum efficiency of 0.3% in the 1540-nm telecommunication wavelength with a fiber-to-detector coupling factor of about 30%. The photoresponse consisted of 2.5-ns-wide voltage pulses with a rise time of 250ps and timing jitter below 40ps. The overall system response time, measured as a second-order, photon cross-correlation function, was below 400ps. Our SSPDs operate at 4.2K inside a liquid-helium Dewar, but their optical fiber inputs and electrical outputs are at room temperature. Our two-channel detector system should find applications in practical quantum cryptography and in antibunching-type quantum correlation measurements.


IEEE Transactions on Applied Superconductivity | 2005

Gigahertz counting rates of NbN single-photon detectors for quantum communications

A. Pearlman; A. Cross; W. Slysz; J. Zhang; A. Verevkin; Marc Currie; A. Korneev; P. Kouminov; K. Smirnov; B. Voronov; G. Gol'tsman; Roman Sobolewski

We report on the GHz counting rate and jitter of our nanostructured superconducting single-photon detectors (SSPDs). The devices were patterned in 4-nm-thick and about 100-nm-wide NbN meander stripes and covered a 10-/spl mu/m/spl times/10-/spl mu/m area. We were able to count single photons at both the visible and infrared telecommunication wavelengths at rates of over 2 GHz with a timing jitter of below 18 ps. We also present the model for the origin of the SSPD switching dynamics and jitter, based on the time-delay effect in the phase-slip-center formation mechanism during the detector photoresponse process. With further improvements in our readout electronics, we expect that our SSPDs will reach counting rates of up to 10 GHz. An integrated quantum communications receiver based on two fiber-coupled SSPDs and operating at 1550-nm wavelength is also presented.


Journal of Physics: Conference Series | 2006

Superconducting single-photon detectors designed for operation at 1.55-µm telecommunication wavelength

I. Milostnaya; A. Korneev; I. Rubtsova; Vadim Seleznev; O. Minaeva; G. Chulkova; O. Okunev; B. Voronov; K. Smirnov; Gregory N. Goltsman; W. Slysz; M. Wegrzecki; M. Guziewicz; J. Bar; M. Górska; A. Pearlman; J. Kitaygorsky; A. Cross; Roman Sobolewski

We report on our progress in development of superconducting single-photon detectors (SSPDs), specifically designed for secure high-speed quantum communications. The SSPDs consist of NbN-based meander nanostructures and operate at liquid helium temperatures. In general, our devices are capable of GHz-rate photon counting in a spectral range from visible light to mid-infrared. The device jitter is 18 ps and dark counts can reach negligibly small levels. The quantum efficiency (QE) of our best SSPDs for visible-light photons approaches a saturation level of ~30-40%, which is limited by the NbN film absorption. For the infrared range (1.55µm), QE is ~6% at 4.2 K, but it can be significantly improved by reduction of the operation temperature to the 2-K level, when QE reaches ~20% for 1.55-µm photons. In order to further enhance the SSPD efficiency at the wavelength of 1.55 µm, we have integrated our detectors with optical cavities, aiming to increase the effective interaction of the photon with the superconducting meander and, therefore, increase the QE. A successful effort was made to fabricate an advanced SSPD structure with an optical microcavity optimized for absorption of 1.55 µm photons. The design consisted of a quarter-wave dielectric layer, combined with a metallic mirror. Early tests performed on relatively low-QE devices integrated with microcavities, showed that the QE value at the resonator maximum (1.55-µm wavelength) was of the factor 3-to-4 higher than that for a nonresonant SSPD. Independently, we have successfully coupled our SSPDs to single-mode optical fibers. The completed receivers, inserted into a liquid-helium transport dewar, reached ~1% system QE for 1.55 µm photons. The SSPD receivers that are fiber-coupled and, simultaneously, integrated with resonators are expected to be the ultimate photon counters for optical quantum communications.


Journal of Modern Optics | 2007

Fibre-coupled, single photon detector based on NbN superconducting nanostructures for quantum communications

W. Slysz; M. Wegrzecki; J. Bar; P. Grabiec; M. Górska; Val Zwiller; C. Latta; P. Böhi; A. Pearlman; A. Cross; D. Pan; J. Kitaygorsky; I. Komissarov; A. Verevkin; I. Milostnaya; A. Korneev; O. Minayeva; G. Chulkova; K. Smirnov; B. Voronov; G. N. Gol’tsman; Roman Sobolewski

We present a novel, two-channel, single photon receiver based on two fibre-coupled, NbN, superconducting, single photon detectors (SSPDs). The SSPDs are nanostructured superconducting meanders and are known for ultrafast and efficient detection of visible-to-infrared photons. Coupling between the NbN detector and optical fibre was achieved using a micromechanical photoresist ring placed directly over the SSPD, holding the fibre in place. With this arrangement, we obtained coupling efficiencies up to ∼30%. Our experimental results showed that the best receiver had a near-infrared system quantum efficiency of 0.33% at 4.2 K. The quantum efficiency increased exponentially with the photon energy increase, reaching a few percent level for visible-light photons. The photoresponse pulses of our devices were limited by the meander high kinetic inductance and had the rise and fall times of approximately 250 ps and 5 ns, respectively. The receivers timing jitter was in the 37 to 58 ps range, approximately 2 to 3 times larger than in our older free-space-coupled SSPDs. We stipulate that this timing jitter is in part due to optical fibre properties. Besides quantum communications, the two-detector arrangement should also find applications in quantum correlation experiments.


Proceedings of SPIE, the International Society for Optical Engineering | 2007

Fiber-coupled NbN superconducting single-photon detectors for quantum correlation measurements

W. Slysz; M. Wegrzecki; J. Bar; P. Grabiec; M. Górska; E. Rieger; S. N. Dorenbos; Val Zwiller; I. Milostnaya; O. Minaeva; A. Antipov; O. Okunev; A. Korneev; K. Smirnov; B. Voronov; N. Kaurova; Gregory N. Goltsman; J. Kitaygorsky; D. Pan; A. Pearlman; A. Cross; I. Komissarov; Roman Sobolewski

We have fabricated fiber-coupled superconducting single-photon detectors (SSPDs), designed for quantum-correlationtype experiments. The SSPDs are nanostructured (~100-nm wide and 4-nm thick) NbN superconducting meandering stripes, operated in the 2 to 4.2 K temperature range, and known for ultrafast and efficient detection of visible to nearinfrared photons with almost negligible dark counts. Our latest devices are pigtailed structures with coupling between the SSPD structure and a single-mode optical fiber achieved using a micromechanical photoresist ring placed directly over the meander. The above arrangement withstands repetitive thermal cycling between liquid helium and room temperature, and we can reach the coupling efficiency of up to ~33%. The system quantum efficiency, measured as the ratio of the photons counted by SSPD to the total number of photons coupled into the fiber, in our early devices was found to be around 0.3 % and 1% for 1.55 &mgr;m and 0.9 &mgr;m photon wavelengths, respectively. The photon counting rate exceeded 250 MHz. The receiver with two SSPDs, each individually biased, was placed inside a transport, 60-liter liquid helium Dewar, assuring uninterrupted operation for over 2 months. Since the receivers optical and electrical connections are at room temperature, the set-up is suitable for any applications, where single-photon counting capability and fast count rates are desired. In our case, it was implemented for photon correlation experiments. The receiver response time, measured as a second-order photon cross-correlation function, was found to be below 400 ps, with timing jitter of less than 40 ps.

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B. Voronov

Moscow State Pedagogical University

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K. Smirnov

Moscow State Pedagogical University

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W. Slysz

University of Rochester

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A. Korneev

University of Rochester

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G. Chulkova

Moscow State Pedagogical University

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Gregory N. Goltsman

Moscow State Pedagogical University

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A. Verevkin

University of Rochester

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I. Milostnaya

Moscow State Pedagogical University

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A. Cross

University of Rochester

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