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Author Vodolazov, D. Y.; Manova, N. N.; Korneeva, Y. P.; Korneev, A. A. url  doi
openurl 
  Title Timing jitter in NbN superconducting microstrip single-photon detector Type Journal Article
  Year 2020 Publication Phys. Rev. Applied Abbreviated Journal Phys. Rev. Applied  
  Volume 14 Issue (up) 4 Pages 044041 (1 to 8)  
  Keywords NbN SSPD, SNSPD  
  Abstract We experimentally study timing jitter of single-photon detection by NbN superconducting strips with width w ranging from 190 nm to 3μm. We find that timing jitter of both narrow (190 nm) and micron-wide strips is about 40 ps at currents where internal detection efficiency η saturates and it is close to our instrumental jitter. We also calculate intrinsic timing jitter in wide strips using the modified time-dependent Ginzburg-Landau equation coupled with a two-temperature model. We find that with increasing width the intrinsic timing jitter increases and the effect is most considerable at currents where a rapid growth of η changes to saturation. We relate it with complicated vortex and antivortex dynamics, which depends on a photon’s absorption site across the strip and its width. The model also predicts that at current close to depairing current the intrinsic timing jitter of a wide strip could be about ℏ/kBTc (Tc is a critical temperature of superconductor), i.e., the same as for a narrow strip.  
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  ISSN 2331-7019 ISBN Medium  
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  Notes Approved no  
  Call Number Serial 1788  
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Author Bardeen, J.; Cooper, L. N.; Schrieffer, J. R. openurl 
  Title Theory of superconductivity Type Journal Article
  Year 1957 Publication Phys. Rev. Abbreviated Journal Phys. Rev.  
  Volume 108 Issue (up) 5 Pages 1175-1204  
  Keywords BCS  
  Abstract A theory of superconductivity is presented, based on the fact that the interaction between electrons resulting from virtual exchange of phonons is attractive when the energy difference between the electrons states involved is less than the phonon energy, â„<8f>ω. It is favorable to form a superconducting phase when this attractive interaction dominates the repulsive screened Coulomb interaction. The normal phase is described by the Bloch individual-particle model. The ground state of a superconductor, formed from a linear combination of normal state configurations in which electrons are virtually excited in pairs of opposite spin and momentum, is lower in energy than the normal state by amount proportional to an average (â„<8f>ω)2, consistent with the isotope effect. A mutually orthogonal set of excited states in one-to-one correspondence with those of the normal phase is obtained by specifying occupation of certain Bloch states and by using the rest to form a linear combination of virtual pair configurations. The theory yields a second-order phase transition and a Meissner effect in the form suggested by Pippard. Calculated values of specific heats and penetration depths and their temperature variation are in good agreement with experiment. There is an energy gap for individual-particle excitations which decreases from about 3.5kTc at T=0°K to zero at Tc. Tables of matrix elements of single-particle operators between the excited-state superconducting wave functions, useful for perturbation expansions and calculations of transition probabilities, are given.  
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  Notes Approved no  
  Call Number Serial 901  
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Author Broglie, Louis de; Silva, J. Andrade e openurl 
  Title Interpretation of a recent experiment on interference of photon beams Type Journal Article
  Year 1968 Publication Phys. Rev. Abbreviated Journal  
  Volume 172 Issue (up) 5 Pages 1284-1285  
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  Abstract The interpretation of an important recent experiment by Pfleegor and Mandel according to the causal formulation of the wave-particle dualism is developed. This interpretation is simpler and seems more satisfactory than that provided by the current ideas on the nature of light.  
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  Notes From [RpL 938] Approved no  
  Call Number Serial 1070  
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Author Pfleegor, R. L.; Mandel, L. openurl 
  Title Interference of independent photon beams Type Journal Article
  Year 1967 Publication Phys. Rev. Abbreviated Journal  
  Volume 159 Issue (up) 5 Pages 1084-1088  
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  Abstract Interference effects produced by the superposition of the light beams from two independent single-mode lasers have been investigated experimentally. It is found that interference takes place even under conditions in which the light intensities are so low that, with high probability, one photon is absorbed before the next one is emitted by one or the other source. Since the average number of registered photons per trial was only about 10, photon correlation techniques were required to demonstrate the interference. The interpretation of the experiment, and the question whether it demonstrates interference between two photons, are discussed.  
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  Notes From [RpL 938] Approved no  
  Call Number Serial 1072  
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Author Steudle, Gesine A.; Schietinger, Stefan; Höckel, David; Dorenbos, Sander N.; Zadeh, Iman E.; Zwiller, Valery; Benson, Oliver doi  openurl
  Title Measuring the quantum nature of light with a single source and a single detector Type Journal Article
  Year 2012 Publication Phys. Rev. A Abbreviated Journal  
  Volume 86 Issue (up) 5 Pages 053814  
  Keywords SSPD, SNSPD, saturation count rates, dead time, dynamic range  
  Abstract An elementary experiment in optics consists of a light source and a detector. Yet, if the source generates nonclassical correlations such an experiment is capable of unambiguously demonstrating the quantum nature of light. We realized such an experiment with a defect center in diamond and a superconducting detector. Previous experiments relied on more complex setups, such as the Hanbury Brown and Twiss configuration, where a beam splitter directs light to two photodetectors, creating the false impression that the beam splitter is a fundamentally required element. As an additional benefit, our results provide a simplification of the widely used photon-correlation techniques.  
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  Publisher American Physical Society Place of Publication Editor  
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  Area Expedition Conference  
  Notes Approved no  
  Call Number Serial 1089  
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